Progress in micro/nano sensors and nanoenergy for future AIoT-based smart home applications
暂无分享,去创建一个
B. Dong | Shang Gao | Xianhao Le | Chengkuo Lee | Tianyiyi He | Feng Wen | Zixuan Zhang | A. Haroun | Siyu Xu | A. haroun
[1] Chi Zhang,et al. Triboelectric nanogenerators , 2023, Nature Reviews Methods Primers.
[2] Zhong Lin Wang,et al. Multilanguage-handwriting self-powered recognition based on triboelectric nanogenerator enabled machine learning , 2020, Nano Energy.
[3] N. Nguyen,et al. Self-powered monolithic accelerometer using a photonic gate , 2020 .
[4] Y. Fuh,et al. Biomimetic and porous nanofiber-based hybrid sensor for multifunctional pressure sensing and human gesture identification via deep learning method , 2020 .
[5] Tong Lin,et al. Efficient conversion of sound noise into electric energy using electrospun polyacrylonitrile membranes , 2020 .
[6] Dilip Kumar,et al. IoT Ecosystem: A Survey on Devices, Gateways, Operating Systems, Middleware and Communication , 2020, International Journal of Wireless Information Networks.
[7] Seunghwa Ryu,et al. Cost-effective and strongly integrated fabric-based wearable piezoelectric energy harvester , 2020 .
[8] Zhong Lin Wang,et al. Self-powered electrocatalytic ammonia synthesis directly from air as driven by dual triboelectric nanogenerators , 2020 .
[9] Hangsik Shin,et al. Wearable multimode sensors with amplified piezoelectricity due to the multi local strain using 3D textile structure for detecting human body signals , 2020 .
[10] K. Sravani,et al. Design and sensitivity analysis of capacitive MEMS pressure sensor for blood pressure measurement , 2020 .
[11] Wei Yan,et al. High-efficiency super-elastic liquid metal based triboelectric fibers and textiles , 2020, Nature Communications.
[12] Wei Zhu,et al. Self-powered wearable pressure sensing system for continuous healthcare monitoring enabled by flexible thin-film thermoelectric generator , 2020 .
[13] Qiongfeng Shi,et al. Continuous direct current by charge transportation for next-generation IoT and real-time virtual reality applications , 2020, Nano Energy.
[14] Chengkuo Lee,et al. Wearable Triboelectric-Human-Machine-Interface (THMI) Using Robust Nanophotonic Readout. , 2020, ACS nano.
[15] Qiongfeng Shi,et al. Wearable Triboelectric/Aluminum Nitride Nano‐Energy‐Nano‐System with Self‐Sustainable Photonic Modulation and Continuous Force Sensing , 2020, Advanced science.
[16] Zhong Lin Wang,et al. Human Motion Driven Self-Powered Photodynamic System for Long-Term Autonomous Cancer Therapy. , 2020, ACS nano.
[17] M. M. Mahmud,et al. An Improved CMUT Structure Enabling Release and Collapse of the Plate in the Same Tx/Rx Cycle for Dual-Frequency Acoustic Angiography , 2020, IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control.
[18] Chengkuo Lee,et al. Machine Learning Glove Using Self‐Powered Conductive Superhydrophobic Triboelectric Textile for Gesture Recognition in VR/AR Applications , 2020, Advanced science.
[19] Zhong Lin Wang,et al. Shape adaptable and highly resilient 3D braided triboelectric nanogenerators as e-textiles for power and sensing , 2020, Nature Communications.
[20] Zheng Yan,et al. Gesture recognition using a bioinspired learning architecture that integrates visual data with somatosensory data from stretchable sensors , 2020 .
[21] Harun Sümbül,et al. A different sleep apnea classification system with neural network based on the acceleration signals , 2020 .
[22] David Vera Anaya,et al. Self-powered eye motion sensor based on triboelectric interaction and near-field electrostatic induction for wearable assistive technologies , 2020, Nano Energy.
[23] Changyuan Tao,et al. Imperceptible sleep monitoring bedding for remote sleep healthcare and early disease diagnosis , 2020, Nano Energy.
[24] Qiongfeng Shi,et al. Inkjet 3D Printed MEMS Vibrational Electromagnetic Energy Harvester , 2020, Energies.
[25] John A Rogers,et al. Materials for flexible bioelectronic systems as chronic neural interfaces , 2020, Nature Materials.
[26] Xianhao Le,et al. Modified Coefficient of Equivalent Mass to Explain Decreased Relative Sensitivity of Piezoelectric Cantilever Humidity Sensor in High Mode , 2020, Journal of Microelectromechanical Systems.
[27] Qiongfeng Shi,et al. Haptic-feedback smart glove as a creative human-machine interface (HMI) for virtual/augmented reality applications , 2020, Science Advances.
[28] S. Ko,et al. A deep-learned skin sensor decoding the epicentral human motions , 2020, Nature Communications.
[29] Aaron D. Ames,et al. Biofuel-powered soft electronic skin with multiplexed and wireless sensing for human-machine interfaces , 2020, Science Robotics.
[30] Zhenan Bao,et al. Morphing electronics enable neuromodulation in growing tissue , 2020, Nature Biotechnology.
[31] Yiming Ma,et al. Progress of infrared guided-wave nanophotonic sensors and devices , 2020, Nano Convergence.
[32] Trisha L. Andrew. The Future of Smart Textiles: User Interfaces and Health Monitors , 2020 .
[33] Chunkai Qiu,et al. Self-powered control interface based on Gray code with hybrid triboelectric and photovoltaics energy harvesting for IoT smart home and access control applications , 2020, Nano Energy.
[34] Xilin Liu,et al. Electronic neural interfaces , 2020 .
[35] Xianhao Le,et al. Specific Sensing Mechanism Investigation of Surface Acoustic Wave Humidity Sensors Coated With Uniform Graphene Oxide Membrane , 2020, Journal of Microelectromechanical Systems.
[36] Zhong Lin Wang. Triboelectric Nanogenerator (TENG)—Sparking an Energy and Sensor Revolution , 2020, Advanced Energy Materials.
[37] Yang Zou,et al. A wearable noncontact free‐rotating hybrid nanogenerator for self‐powered electronics , 2020 .
[38] Wei Dong,et al. An epidermal sEMG tattoo-like patch as a new human–machine interface for patients with loss of voice , 2020, Microsystems & nanoengineering.
[39] Zhong Lin Wang,et al. Machine-knitted washable sensor array textile for precise epidermal physiological signal monitoring , 2020, Science Advances.
[40] Yijun Shi,et al. Noncontact triboelectric nanogenerator for human motion monitoring and energy harvesting , 2020, Nano Energy.
[41] A. Tamayol,et al. A Wirelessly Controlled Smart Bandage with 3D‐Printed Miniaturized Needle Arrays , 2020, Advanced functional materials.
[42] X. Tao,et al. High‐Performance Thermoelectric SnSe: Aqueous Synthesis, Innovations, and Challenges , 2020, Advanced science.
[43] F. Ayazi,et al. Precision wearable accelerometer contact microphones for longitudinal monitoring of mechano-acoustic cardiopulmonary signals , 2020, npj Digital Medicine.
[44] Qiang Wu,et al. Integrating microfluidics and biosensing on a single flexible acoustic device using hybrid modes. , 2020, Lab on a chip.
[45] Lianjun Wang,et al. Stretchable fabric generates electric power from woven thermoelectric fibers , 2020, Nature Communications.
[46] Tiehu Li,et al. Triboelectric Nanogenerator Based Smart Electronics via Machine Learning , 2020, Advanced Materials Technologies.
[47] Liwei Lin,et al. Pulsed Wave Doppler Ultrasound Using 3.7 MHz Pmuts Toward Wearable Blood Flow Measurements , 2020, 2020 IEEE 33rd International Conference on Micro Electro Mechanical Systems (MEMS).
[48] S. Beeby,et al. Textile-based triboelectric nanogenerator with alternating positive and negative freestanding grating structure , 2019 .
[49] Wenlong Cheng,et al. Disruptive, Soft, Wearable Sensors , 2019, Advanced materials.
[50] Wei Huang,et al. Modeling Thin Film Solar Cells: From Organic to Perovskite , 2019, Advanced science.
[51] Tianyiyi He,et al. Development of neural interfaces and energy harvesters towards self-powered implantable systems for healthcare monitoring and rehabilitation purposes , 2019, Nano Energy.
[52] John Sabino,et al. Vertically-stacked MEMS PM2.5 sensor for wearable applications , 2019, Sensors and Actuators A: Physical.
[53] Jie Chen,et al. Self‐Powered Iontophoretic Transdermal Drug Delivery System Driven and Regulated by Biomechanical Motions , 2019, Advanced Functional Materials.
[54] Qiongfeng Shi,et al. Self‐Sustainable Wearable Textile Nano‐Energy Nano‐System (NENS) for Next‐Generation Healthcare Applications , 2019, Advanced science.
[55] Xiujian Chou,et al. Piezoelectric-enhanced triboelectric nanogenerator fabric for biomechanical energy harvesting , 2019, Nano Energy.
[56] Zhong Ma,et al. Skin-Inspired Electronics and Its Applications in Advanced Intelligent Systems , 2019, Adv. Intell. Syst..
[57] Qi Chen,et al. Efficiency above 12% for 1 cm2 Flexible Organic Solar Cells with Ag/Cu Grid Transparent Conducting Electrode , 2019, Advanced science.
[58] Hadi Heidari,et al. Fusion of Wearable and Contactless Sensors for Intelligent Gesture Recognition , 2019, Adv. Intell. Syst..
[59] Caofeng Pan,et al. Tactile Sensors for Advanced Intelligent Systems , 2019, Adv. Intell. Syst..
[60] Zhenan Bao,et al. Electronic Skin: Recent Progress and Future Prospects for Skin‐Attachable Devices for Health Monitoring, Robotics, and Prosthetics , 2019, Advanced materials.
[61] Tianyiyi He,et al. Direct muscle stimulation using diode-amplified triboelectric nanogenerators (TENGs) , 2019, Nano Energy.
[62] J. Xie,et al. Duplex mode tilt measurements based on a MEMS biaxial resonant accelerometer , 2019, Sensors and Actuators A: Physical.
[63] Sanjiv S. Gambhir,et al. Simultaneous transrectal ultrasound and photoacoustic human prostate imaging , 2019, Science Translational Medicine.
[64] Zhou Zhou,et al. Skin‐Inspired Electronics and Its Applications in Advanced Intelligent Systems , 2019, Adv. Intell. Syst..
[65] Hossein Amirkhani,et al. Smart home resident identification based on behavioral patterns using ambient sensors , 2019, Personal and Ubiquitous Computing.
[66] Ajay Giri Prakash Kottapalli,et al. Design and applications of MEMS flow sensors: A review , 2019, Sensors and Actuators A: Physical.
[67] Qiongfeng Shi,et al. Minimalist and multi-functional human machine interface (HMI) using a flexible wearable triboelectric patch , 2019, Nano Energy.
[68] J. Xie,et al. Surface acoustic wave humidity sensors based on uniform and thickness controllable graphene oxide thin films formed by surface tension , 2019, Microsystems & Nanoengineering.
[69] Debkalpa Goswami,et al. Waterproof, Breathable, and Antibacterial Self‐Powered e‐Textiles Based on Omniphobic Triboelectric Nanogenerators , 2019, Advanced Functional Materials.
[70] Jae‐Woong Jeong,et al. Advanced Soft Materials, Sensor Integrations, and Applications of Wearable Flexible Hybrid Electronics in Healthcare, Energy, and Environment , 2019, Advanced materials.
[71] M. Yuce,et al. Sensors and Control Interface Methods Based on Triboelectric Nanogenerator in IoT Applications , 2019, IEEE Access.
[72] Chengkuo Lee,et al. A rotational pendulum based electromagnetic/triboelectric hybrid-generator for ultra-low-frequency vibrations aiming at human motion and blue energy applications , 2019, Nano Energy.
[73] Eric M. Yeatman,et al. Rotational energy harvesting using bi-stability and frequency up-conversion for low-power sensing applications: Theoretical modelling and experimental validation , 2019, Mechanical Systems and Signal Processing.
[74] Nitish V. Thakor,et al. Investigation of Low‐Current Direct Stimulation for Rehabilitation Treatment Related to Muscle Function Loss Using Self‐Powered TENG System , 2019, Advanced science.
[75] Nitish V. Thakor,et al. Mechano-neuromodulation of autonomic pelvic nerve for underactive bladder: A triboelectric neurostimulator integrated with flexible neural clip interface , 2019, Nano Energy.
[76] Enri Duqi,et al. A Piezoresistive Mems Barometer with Thermomecanical Stress Rejection , 2019, 2019 20th International Conference on Solid-State Sensors, Actuators and Microsystems & Eurosensors XXXIII (TRANSDUCERS & EUROSENSORS XXXIII).
[77] J. Xie,et al. An ALN Resonant Microcantilever Humidity Sensor by Activating Specific Sets of Top Electrodes Based on Graphene Oxide , 2019, 2019 20th International Conference on Solid-State Sensors, Actuators and Microsystems & Eurosensors XXXIII (TRANSDUCERS & EUROSENSORS XXXIII).
[78] Xi Tian,et al. Wireless body sensor networks based on metamaterial textiles , 2019, Nature Electronics.
[79] Qiongfeng Shi,et al. Self‐Powered Bio‐Inspired Spider‐Net‐Coding Interface Using Single‐Electrode Triboelectric Nanogenerator , 2019, Advanced science.
[80] Hanfu Wang,et al. Assembly Strategy and Performance Evaluation of Flexible Thermoelectric Devices , 2019, Advanced science.
[81] A. Torralba,et al. Learning the signatures of the human grasp using a scalable tactile glove , 2019, Nature.
[82] Yang Zou,et al. Symbiotic cardiac pacemaker , 2019, Nature Communications.
[83] Qiongfeng Shi,et al. Self-powered glove-based intuitive interface for diversified control applications in real/cyber space , 2019, Nano Energy.
[84] Ge Zhang,et al. An efficient PEDOT-coated textile for wearable thermoelectric generators and strain sensors , 2019, Journal of Materials Chemistry C.
[85] Chao Gao,et al. Humidity sensors based on AlN microcantilevers excited at high-order resonant modes and sensing layers of uniform graphene oxide , 2019, Sensors and Actuators B: Chemical.
[86] Nitish V Thakor,et al. Self-Powered Direct Muscle Stimulation Using a Triboelectric Nanogenerator (TENG) Integrated with a Flexible Multiple-Channel Intramuscular Electrode. , 2019, ACS nano.
[87] Vincent K. N. Lau,et al. Event-Driven Sensor Scheduling for Mission-Critical Control Applications , 2019, IEEE Transactions on Signal Processing.
[88] Qiongfeng Shi,et al. Beyond energy harvesting - multi-functional triboelectric nanosensors on a textile , 2019, Nano Energy.
[89] Qiongfeng Shi,et al. More than energy harvesting – Combining triboelectric nanogenerator and flexible electronics technology for enabling novel micro-/nano-systems , 2019, Nano Energy.
[90] Arunkumar Chandrasekhar,et al. Metal–Organic Framework: A Novel Material for Triboelectric Nanogenerator–Based Self‐Powered Sensors and Systems , 2019, Advanced Energy Materials.
[91] Benton H. Calhoun,et al. Nanowatt-Level Wakeup Receiver Front Ends Using MEMS Resonators for Impedance Transformation , 2019, IEEE Transactions on Microwave Theory and Techniques.
[92] Chengkuo Lee,et al. Self-Powered and Self-Functional Cotton Sock Using Piezoelectric and Triboelectric Hybrid Mechanism for Healthcare and Sports Monitoring. , 2019, ACS nano.
[93] Qiongfeng Shi,et al. From flexible electronics technology in the era of IoT and artificial intelligence toward future implanted body sensor networks , 2019, APL Materials.
[94] Hengyu Guo,et al. A full-packaged rolling triboelectric-electromagnetic hybrid nanogenerator for energy harvesting and building up self-powered wireless systems , 2019, Nano Energy.
[95] Mahmut Sami Yazici,et al. Investigation of Broadband Characteristics of Multi-Frequency Piezoelectric Micromachined Ultrasonic Transducer (MF-pMUT) , 2019, IEEE Sensors Journal.
[96] Chenhui Zhang,et al. A general optimization approach for contact-separation triboelectric nanogenerator , 2019, Nano Energy.
[97] Yunlong Zi,et al. A novel triboelectric nanogenerator based on electrospun polyvinylidene fluoride nanofibers for effective acoustic energy harvesting and self-powered multifunctional sensing , 2019, Nano Energy.
[98] Frederic Nabki,et al. Dual-Path and Dual-Chopper Amplifier Signal Conditioning Circuit With Improved SNR and Ultra-Low Power Consumption for MEMS , 2019, IEEE Transactions on Circuits and Systems I: Regular Papers.
[99] B. B. Zaidan,et al. Smart Home-based IoT for Real-time and Secure Remote Health Monitoring of Triage and Priority System using Body Sensors: Multi-driven Systematic Review , 2019, Journal of Medical Systems.
[100] A. Mathewson,et al. A Study on the Spatial Dependence of a MEMS Electromagnetic Transducer , 2019, Journal of Microelectromechanical Systems.
[101] Zhong Lin Wang,et al. The Current Development and Future Outlook of Triboelectric Nanogenerators: A Survey of Literature , 2019, Advanced Materials Technologies.
[102] M. Brook,et al. Single‐Step Generation of Flexible, Free‐Standing Arrays of Multimode Cylindrical Waveguides , 2019, Advanced Engineering Materials.
[103] Zhenan Bao,et al. Soft and elastic hydrogel-based microelectronics for localized low-voltage neuromodulation , 2019, Nature Biomedical Engineering.
[104] Bin Xiong,et al. An out-of-plane electromagnetic induction based resonant MEMS magnetometer , 2019, Sensors and Actuators A: Physical.
[105] Zhenan Bao,et al. Soft and elastic hydrogel-based microelectronics for localized low-voltage neuromodulation , 2019, Nature Biomedical Engineering.
[106] Yongtian Wang,et al. Directly printed wearable electronic sensing textiles towards human–machine interfaces , 2018 .
[107] Wei Zhang,et al. Securing Consumer IoT in the Smart Home: Architecture, Challenges, and Countermeasures , 2018, IEEE Wireless Communications.
[108] Chengkuo Lee,et al. Development of a Highly Sensitive Humidity Sensor Based on a Piezoelectric Micromachined Ultrasonic Transducer Array Functionalized with Graphene Oxide Thin Film , 2018, Sensors.
[109] Sung Soo Kwak,et al. Textile‐Based Triboelectric Nanogenerators for Self‐Powered Wearable Electronics , 2018, Advanced Functional Materials.
[110] Balwinder Kaur,et al. From Point-of-Care Testing to eHealth Diagnostic Devices (eDiagnostics) , 2018, ACS central science.
[111] Xuezhong Wu,et al. 0.04 degree-per-hour MEMS disk resonator gyroscope with high-quality factor (510 k) and long decaying time constant (74.9 s) , 2018, Microsystems & Nanoengineering.
[112] Chengkuo Lee,et al. A non-resonant rotational electromagnetic energy harvester for low-frequency and irregular human motion , 2018, Applied Physics Letters.
[113] Seong Kwang Hong,et al. Machine learning-based self-powered acoustic sensor for speaker recognition , 2018, Nano Energy.
[114] Chengkuo Lee,et al. All-Dielectric Surface-Enhanced Infrared Absorption-Based Gas Sensor Using Guided Resonance. , 2018, ACS applied materials & interfaces.
[115] Chengkuo Lee,et al. Triboelectric Self-Powered Wearable Flexible Patch as 3D Motion Control Interface for Robotic Manipulator. , 2018, ACS nano.
[116] Chuan Ning,et al. Washable textile-structured single-electrode triboelectric nanogenerator for self-powered wearable electronics , 2018 .
[117] Michael D. Paskett,et al. Wireless bioresorbable electronic system enables sustained nonpharmacological neuroregenerative therapy , 2018, Nature Medicine.
[118] Chengkuo Lee,et al. Reconfigurable MEMS Fano metasurfaces with multiple-input–output states for logic operations at terahertz frequencies , 2018, Nature Communications.
[119] Navid Rabiee,et al. Point-of-care microfluidic devices for pathogen detection. , 2018, Biosensors & bioelectronics.
[120] Jinhao Qiu,et al. A piezoelectric spring pendulum oscillator used for multi-directional and ultra-low frequency vibration energy harvesting , 2018, Applied Energy.
[121] Yong Qing Fu,et al. Triboelectric effect based instantaneous self-powered wireless sensing with self-determined identity , 2018, Nano Energy.
[122] Jongtae Rhee,et al. Performance Analysis of IoT-Based Sensor, Big Data Processing, and Machine Learning Model for Real-Time Monitoring System in Automotive Manufacturing , 2018, Sensors.
[123] Zhong Lin Wang,et al. Keystroke Dynamics Identification Based on Triboelectric Nanogenerator for Intelligent Keyboard Using Deep Learning Method , 2018, Advanced Materials Technologies.
[124] Xinyu Xue,et al. Self-powered smelling electronic-skin based on the piezo-gas-sensor matrix for real-time monitoring the mining environment , 2018, Sensors and Actuators B: Chemical.
[125] Qiongfeng Shi,et al. Battery-free neuromodulator for peripheral nerve direct stimulation , 2018, Nano Energy.
[126] J. Xie,et al. A humidity sensor based on AlN Lamb wave resonator coated with graphene oxide of different concentrations , 2018, Journal of Micromechanics and Microengineering.
[127] Richard V. Penty,et al. High-Speed Data Transmission Over Flexible Multimode Polymer Waveguides Under Flexure , 2018, IEEE Photonics Technology Letters.
[128] Richard V. Penty,et al. Flexible Multimode Polymer Waveguide Arrays for Versatile High-Speed Short-Reach Communication Links , 2018, Journal of Lightwave Technology.
[129] Weidong Zhou,et al. Flexible Transient Optical Waveguides and Surface‐Wave Biosensors Constructed from Monocrystalline Silicon , 2018, Advanced materials.
[130] Sanghoon Lee,et al. Toward advanced neural interfaces for the peripheral nervous system (PNS) and their future applications , 2018, Current Opinion in Biomedical Engineering.
[131] Kyeong Nam Kim,et al. Transparent-flexible-multimodal triboelectric nanogenerators for mechanical energy harvesting and self-powered sensor applications , 2018, Nano Energy.
[132] Chengkuo Lee,et al. Active Control of Resonant Cloaking in a Terahertz MEMS Metamaterial , 2018, Advanced Optical Materials.
[133] Bijan Najafi,et al. Health Sensors, Smart Home Devices, and the Internet of Medical Things: An Opportunity for Dramatic Improvement in Care for the Lower Extremity Complications of Diabetes , 2018, Journal of diabetes science and technology.
[134] Zhong Lin Wang,et al. Keystroke dynamics enabled authentication and identification using triboelectric nanogenerator array , 2018 .
[135] Liyan Yu,et al. Energy harvesting textiles for a rainy day: woven piezoelectrics based on melt-spun PVDF microfibres with a conducting core , 2018, npj Flexible Electronics.
[136] Khamdi Mubarok,et al. Smart manufacturing systems for Industry 4.0: Conceptual framework, scenarios, and future perspectives , 2018, Frontiers of Mechanical Engineering.
[137] Chengkuo Lee,et al. Piezoelectric micromachined ultrasonic transducers with low thermoelastic dissipation and high quality factor , 2018 .
[138] J. Brugger,et al. All-fiber hybrid piezoelectric-enhanced triboelectric nanogenerator for wearable gesture monitoring , 2018, Nano Energy.
[139] Chengkuo Lee,et al. Hybrid Metamaterial Absorber Platform for Sensing of CO2 Gas at Mid‐IR , 2018, Advanced science.
[140] Boris Murmann,et al. Skin electronics from scalable fabrication of an intrinsically stretchable transistor array , 2018, Nature.
[141] Hao Wang,et al. Energy harvesting technologies in roadway and bridge for different applications – A comprehensive review , 2018 .
[142] J. Xie,et al. A high performance humidity sensor based on surface acoustic wave and graphene oxide on AlN/Si layered structure , 2018 .
[143] Bogdan Kwolek,et al. Event-driven system for fall detection using body-worn accelerometer and depth sensor , 2018, IET Comput. Vis..
[144] Tao Hua,et al. Fiber‐Based Thermoelectric Generators: Materials, Device Structures, Fabrication, Characterization, and Applications , 2018 .
[145] S. Valenzuela,et al. Thermoelectric spin voltage in graphene , 2018, Nature Nanotechnology.
[146] R. Zhong,et al. Smart manufacturing systems for Industry 4.0: Conceptual framework, scenarios, and future perspectives , 2018, Frontiers of Mechanical Engineering.
[147] Dirk Englund,et al. High-performance flexible waveguide-integrated photodetectors , 2018 .
[148] Bo Wang,et al. Noncontact Heartbeat and Respiration Monitoring Based on a Hollow Microstructured Self-Powered Pressure Sensor. , 2018, ACS applied materials & interfaces.
[149] Mohsen Guizani,et al. Deep Learning for IoT Big Data and Streaming Analytics: A Survey , 2017, IEEE Communications Surveys & Tutorials.
[150] Zong-Hong Lin,et al. Utilization of self-powered electrochemical systems: Metallic nanoparticle synthesis and lactate detection , 2017 .
[151] Yang Wang,et al. Triboelectric nanogenerators as flexible power sources , 2017, npj Flexible Electronics.
[152] Wen Wang,et al. A MEMS resonant accelerometer with sensitivity enhancement and adjustment mechanisms , 2017 .
[153] Anupama Yadav,et al. Monolithically integrated stretchable photonics , 2017, Light: Science & Applications.
[154] Haoxiang Wang,et al. Efficient IoT-based sensor BIG Data collection-processing and analysis in smart buildings , 2017, Future Gener. Comput. Syst..
[155] Mohsen Akbari,et al. An Advanced Multifunctional Hydrogel‐Based Dressing for Wound Monitoring and Drug Delivery , 2017, Advanced healthcare materials.
[156] Terry M. Tritt,et al. Advances in thermoelectric materials research: Looking back and moving forward , 2017, Science.
[157] T. Manzaneque,et al. Lithium Niobate MEMS Chirp Compressors for Near Zero Power Wake-Up Radios , 2017, Journal of Microelectromechanical Systems.
[158] Zhenan Bao,et al. Bring on the bodyNET , 2017, Nature.
[159] M. Dawson,et al. Integration of Semiconductor Nanowire Lasers with Polymeric Waveguide Devices on a Mechanically Flexible Substrate. , 2017, Nano letters.
[160] Sungho Kang,et al. Zero-power infrared digitizers based on plasmonically enhanced micromechanical photoswitches. , 2017, Nature nanotechnology.
[161] Zhong Lin Wang,et al. A Sliding-Mode Triboelectric Nanogenerator with Chemical Group Grated Structure by Shadow Mask Reactive Ion Etching. , 2017, ACS nano.
[162] Yan Zhang,et al. A Self-Powered Wearable Noninvasive Electronic-Skin for Perspiration Analysis Based on Piezo-Biosensing Unit Matrix of Enzyme/ZnO Nanoarrays. , 2017, ACS applied materials & interfaces.
[163] John G. Jones,et al. Acoustically actuated ultra-compact NEMS magnetoelectric antennas , 2017, Nature Communications.
[164] Ran Cao,et al. Rotating-Sleeve Triboelectric-Electromagnetic Hybrid Nanogenerator for High Efficiency of Harvesting Mechanical Energy. , 2017, ACS nano.
[165] Junwen Zhong,et al. Sensitivity-Enhanced Wearable Active Voiceprint Sensor Based on Cellular Polypropylene Piezoelectret. , 2017, ACS applied materials & interfaces.
[166] Yaoxing Shang,et al. An electromagnetic wearable 3-DoF resonance human body motion energy harvester using ferrofluid as a lubricant , 2017 .
[167] Tao Chen,et al. Modeling and verification of a piezoelectric frequency-up-conversion energy harvesting system , 2017 .
[168] Takeshi Saito,et al. From materials to device design of a thermoelectric fabric for wearable energy harvesters , 2017 .
[169] R. R. Mather,et al. Fabrication of Photovoltaic Textiles , 2017 .
[170] Chengkuo Lee,et al. Active MEMS metamaterials for THz bandwidth control , 2017 .
[171] Chenjie Xu,et al. Recent advances in the design of polymeric microneedles for transdermal drug delivery and biosensing. , 2017, Lab on a chip.
[172] Jinlian Hu,et al. A novel design for a wearable thermoelectric generator based on 3D fabric structure , 2017 .
[173] Nan Zhang,et al. High-performance and compact-designed flexible thermoelectric modules enabled by a reticulate carbon nanotube architecture , 2017, Nature Communications.
[174] Ning Hu,et al. Multisensor-integrated organs-on-chips platform for automated and continual in situ monitoring of organoid behaviors , 2017, Proceedings of the National Academy of Sciences.
[175] Sang Youn Han,et al. Flexible Near-Field Wireless Optoelectronics as Subdermal Implants for Broad Applications in Optogenetics , 2017, Neuron.
[176] Hong Ding,et al. A MEMS piezoelectric in-plane resonant accelerometer based on aluminum nitride with two-stage microleverage mechanism , 2017 .
[177] Qiongfeng Shi,et al. Broadband Energy Harvester Using Non-linear Polymer Spring and Electromagnetic/Triboelectric Hybrid Mechanism , 2017, Scientific Reports.
[178] Hassan Hajghassem,et al. Point of care testing: The impact of nanotechnology. , 2017, Biosensors & bioelectronics.
[179] Wei-Hsin Liao,et al. Magnetic-spring based energy harvesting from human motions: Design, modeling and experiments , 2017 .
[180] Kevin O'Brien,et al. Optoelectronically innervated soft prosthetic hand via stretchable optical waveguides , 2016, Science Robotics.
[181] Yongan Huang,et al. Energy Harvesters for Wearable and Stretchable Electronics: From Flexibility to Stretchability , 2016, Advanced materials.
[182] C. Ho,et al. Active control of electromagnetically induced transparency with dual dark mode excitation pathways using MEMS based tri-atomic metamolecules , 2016 .
[183] Chengkuo Lee,et al. Highly sensitive piezoelectric micromachined ultrasonic transducer operated in air , 2016 .
[184] Christal Gordon,et al. Event driven persistent sensing: Overcoming the energy and lifetime limitations in unattended wireless sensors , 2016, 2016 IEEE SENSORS.
[185] Dechun Zou,et al. Wearable Power‐Textiles by Integrating Fabric Triboelectric Nanogenerators and Fiber‐Shaped Dye‐Sensitized Solar Cells , 2016 .
[186] Zhenan Bao,et al. Pursuing prosthetic electronic skin. , 2016, Nature materials.
[187] Xinxin Li,et al. Bi-resonant structure with piezoelectric PVDF films for energy harvesting from random vibration sources at low frequency , 2016 .
[188] Ying Wang,et al. Dynamic Triboelectrification‐Induced Electroluminescence and its Use in Visualized Sensing , 2016, Advanced materials.
[189] Zhihao Yang,et al. Design and characterisation of a piezoelectric knee-joint energy harvester with frequency up-conversion through magnetic plucking , 2016 .
[190] Luca Benini,et al. An Event-Driven Ultra-Low-Power Smart Visual Sensor , 2016, IEEE Sensors Journal.
[191] Anvar A. Zakhidov,et al. Woven‐Yarn Thermoelectric Textiles , 2016, Advanced materials.
[192] Hye Rim Cho,et al. A graphene-based electrochemical device with thermoresponsive microneedles for diabetes monitoring and therapy. , 2016, Nature nanotechnology.
[193] Chengkuo Lee,et al. Investigation of geometric design in piezoelectric microelectromechanical systems diaphragms for ultrasonic energy harvesting , 2016 .
[194] M. Willander,et al. Triboelectric Nanogenerators Based on Melamine and Self‐Powered High‐Sensitive Sensors for Melamine Detection , 2016 .
[195] Qiongfeng Shi,et al. MEMS Based Broadband Piezoelectric Ultrasonic Energy Harvester (PUEH) for Enabling Self-Powered Implantable Biomedical Devices , 2016, Scientific Reports.
[196] Giorgia Pastorin,et al. Toward Self‐Powered Wearable Adhesive Skin Patch with Bendable Microneedle Array for Transdermal Drug Delivery , 2016, Advanced science.
[197] Andrea Alù,et al. Plasmonic piezoelectric nanomechanical resonator for spectrally selective infrared sensing , 2016, Nature Communications.
[198] Chengkuo Lee,et al. Active Control of Electromagnetically Induced Transparency Analog in Terahertz MEMS Metamaterial , 2016 .
[199] M. Kaltenbrunner,et al. Ultraflexible organic photonic skin , 2016, Science Advances.
[200] K. Azgın,et al. Design and fabrication of a high performance resonant MEMS temperature sensor , 2016 .
[201] Yunlong Zi,et al. A Water‐Proof Triboelectric–Electromagnetic Hybrid Generator for Energy Harvesting in Harsh Environments , 2016 .
[202] Min Gyu Kang,et al. Recent Progress on PZT Based Piezoelectric Energy Harvesting Technologies , 2016 .
[203] Zhong Lin Wang,et al. A universal self-charging system driven by random biomechanical energy for sustainable operation of mobile electronics , 2015, Nature Communications.
[204] Jian Sun,et al. Deep Residual Learning for Image Recognition , 2015, 2016 IEEE Conference on Computer Vision and Pattern Recognition (CVPR).
[205] Aydogan Ozcan,et al. Emerging Technologies for Next-Generation Point-of-Care Testing. , 2015, Trends in biotechnology.
[206] Chengkuo Lee,et al. Diaphragm shape effect on the sensitivity of surface acoustic wave based pressure sensor for harsh environment , 2015 .
[207] Chengkuo Lee,et al. Zero-Bending Piezoelectric Micromachined Ultrasonic Transducer (pMUT) With Enhanced Transmitting Performance , 2015, Journal of Microelectromechanical Systems.
[208] Makoto Ishida,et al. Flexible parylene-film optical waveguide arrays , 2015 .
[209] Zhen Gu,et al. Stretch-Triggered Drug Delivery from Wearable Elastomer Films Containing Therapeutic Depots. , 2015, ACS nano.
[210] Ahmed Haroun,et al. Study of electromagnetic vibration energy harvesting with free/impact motion for low frequency operation , 2015 .
[211] Zhong Lin Wang,et al. Progress in triboelectric nanogenerators as a new energy technology and self-powered sensors , 2015 .
[212] Chengkuo Lee,et al. An Electromagnetic MEMS Energy Harvester Array with Multiple Vibration Modes , 2015, Micromachines.
[213] Chengkuo Lee,et al. A Piezoelectric Micromachined Ultrasonic Transducer Using Piston-Like Membrane Motion , 2015, IEEE Electron Device Letters.
[214] Bernhard E. Boser,et al. Ultrasonic fingerprint sensor using a piezoelectric micromachined ultrasonic transducer array integrated with complementary metal oxide semiconductor electronics , 2015 .
[215] Jae Yeong Park,et al. Modeling and experiment of a handy motion driven, frequency up-converting electromagnetic energy harvester using transverse impact by spherical ball , 2015 .
[216] J. Xie,et al. Electrostatic charge sensor based on a micromachined resonator with dual micro-levers , 2015 .
[217] G. Pastorin,et al. Development of a Flexible and Disposable Microneedle-Fluidic-System With Finger-Driven Drug Loading and Delivery Functions for Inflammation Treatment , 2015, Journal of Microelectromechanical Systems.
[218] Jun Chen,et al. An ultrarobust high-performance triboelectric nanogenerator based on charge replenishment. , 2015, ACS nano.
[219] Petros Maragos,et al. Multichannel speech enhancement using MEMS microphones , 2015, 2015 IEEE International Conference on Acoustics, Speech and Signal Processing (ICASSP).
[220] Chengkuo Lee,et al. Investigation of the Nonlinear Electromagnetic Energy Harvesters From Hand Shaking , 2015, IEEE Sensors Journal.
[221] Ahmed Haroun,et al. Micro electromagnetic vibration energy harvester based on free/impact motion for low frequency–large amplitude operation , 2015 .
[222] Chengkuo Lee,et al. An Intermittent Self-Powered Energy Harvesting System From Low-Frequency Hand Shaking , 2015, IEEE Sensors Journal.
[223] Zhong Lin Wang,et al. Hybridized electromagnetic-triboelectric nanogenerator for scavenging biomechanical energy for sustainably powering wearable electronics. , 2015, ACS nano.
[224] Chengkuo Lee,et al. CMOS Compatible Midinfrared Wavelength-Selective Thermopile for High Temperature Applications , 2015, Journal of Microelectromechanical Systems.
[225] Chengkuo Lee,et al. Development of a Broadband Triboelectric Energy Harvester With SU-8 Micropillars , 2015, Journal of Microelectromechanical Systems.
[226] Hao Wang,et al. Dense vertical SU-8 microneedles drawn from a heated mold with precisely controlled volume , 2015 .
[227] Chengkuo Lee,et al. Characterization of nanometer-thick polycrystalline silicon with phonon-boundary scattering enhanced thermoelectric properties and its application in infrared sensors. , 2015, Nanoscale.
[228] Chengkuo Lee,et al. Micromachined piezoelectric ultrasonic transducer with ultra-wide frequency bandwidth , 2015 .
[229] W. Fang,et al. Microneedle Array Integrated With CNT Nanofilters for Controlled and Selective Drug Delivery , 2014, Journal of Microelectromechanical Systems.
[230] Ki-Uk Kyung,et al. Polymer‐Waveguide‐Based Flexible Tactile Sensor Array for Dynamic Response , 2014, Advanced materials.
[231] S. Yen,et al. Ultra-thin flexible polyimide neural probe embedded in a dissolvable maltose-coated microneedle , 2014 .
[232] Chengkuo Lee,et al. An In-Plane Approximated Nonlinear MEMS Electromagnetic Energy Harvester , 2014, Journal of Microelectromechanical Systems.
[233] Chengkuo Lee,et al. Flow sensing and energy harvesting characteristics of a wind-driven piezoelectric Pb(Zr0.52, Ti0.48)O 3 microcantilever , 2014 .
[234] Sihong Wang,et al. Freestanding Triboelectric‐Layer‐Based Nanogenerators for Harvesting Energy from a Moving Object or Human Motion in Contact and Non‐contact Modes , 2014, Advanced materials.
[235] Dae-Hyeong Kim,et al. Multifunctional wearable devices for diagnosis and therapy of movement disorders. , 2014, Nature nanotechnology.
[236] D. Kwong,et al. Annularly Grooved Diaphragm Pressure Sensor With Embedded Silicon Nanowires for Low Pressure Application , 2014, Journal of Microelectromechanical Systems.
[237] Chengkuo Lee,et al. Evidence on simultaneous improvement of motional impedance and Q-factor of silicon phononic crystal micromechanical resonators by variously engineering the cavity defects , 2014 .
[238] Jun Chen,et al. Triboelectrification-based organic film nanogenerator for acoustic energy harvesting and self-powered active acoustic sensing. , 2014, ACS nano.
[239] Chengkuo Lee,et al. Ultra-wide frequency broadening mechanism for micro-scale electromagnetic energy harvester , 2014 .
[240] Long Lin,et al. Theory of Sliding‐Mode Triboelectric Nanogenerators , 2013, Advanced materials.
[241] Seok Hyun Yun,et al. Light-guiding hydrogels for cell-based sensing and optogenetic synthesis in vivo , 2013, Nature Photonics.
[242] Hong Hu,et al. Modeling and experimental investigation of an impact-driven piezoelectric energy harvester from human motion , 2013 .
[243] Chengkuo Lee,et al. A new energy harvester design for high power output at low frequencies , 2013 .
[244] Vytautas Ostasevicius,et al. Identification of Capacitive MEMS Accelerometer Structure Parameters for Human Body Dynamics Measurements , 2013, Sensors.
[245] Zhong Lin Wang,et al. High-resolution electroluminescent imaging of pressure distribution using a piezoelectric nanowire LED array , 2013, Nature Photonics.
[246] K. Zhang,et al. Engineered doping of organic semiconductors for enhanced thermoelectric efficiency. , 2013, Nature materials.
[247] Hongtao Lin,et al. 3-D Integrated Flexible Glass Photonics , 2013, 1307.5937.
[248] L. Francioso,et al. PDMS/Kapton interface plasma treatment effects on the polymeric package for a wearable thermoelectric generator. , 2013, ACS applied materials & interfaces.
[249] D. Kwong,et al. Numerical and experimental study on silicon microresonators based on phononic crystal slabs with reduced central-hole radii , 2013 .
[250] Gaël Pillonnet,et al. Electromagnetic MEMS microspeaker for portable electronic devices , 2013 .
[251] Chengkuo Lee,et al. Development of a thermopile infrared sensor using stacked double polycrystalline silicon layers based on the CMOS process , 2013 .
[252] Jun Chen,et al. A self-powered triboelectric nanosensor for mercury ion detection. , 2013, Angewandte Chemie.
[253] Hao Wang,et al. Development of vertical SU-8 microtubes integrated with dissolvable tips for transdermal drug delivery. , 2013, Biomicrofluidics.
[254] Chengkuo Lee,et al. Feasibility study of a 3D vibration-driven electromagnetic MEMS energy harvester with multiple vibration modes , 2012 .
[255] S. Priya,et al. Piezoelectric MEMS for energy harvesting , 2012 .
[256] Chengkuo Lee,et al. Piezoelectric MEMS-based wideband energy harvesting systems using a frequency-up-conversion cantilever stopper , 2012 .
[257] D. Kwong,et al. Characterization of Piezoresistive-Si-Nanowire-Based Pressure Sensors by Dynamic Cycling Test With Extralarge Compressive Strain , 2012, IEEE Transactions on Electron Devices.
[258] Chengkuo Lee,et al. Characterization of a silicon nanowire-based cantilever air-flow sensor , 2012 .
[259] D. Kwong,et al. Investigation on the optimized design of alternate-hole-defect for 2D phononic crystal based silicon microresonators , 2012 .
[260] Mo Li,et al. Flexible and tunable silicon photonic circuits on plastic substrates , 2012, Scientific Reports.
[261] Chengkuo Lee,et al. PDMS-Coated Piezoresistive NEMS Diaphragm for Chloroform Vapor Detection , 2012, IEEE Electron Device Letters.
[262] Chengkuo Lee,et al. Development of piezoelectric microcantilever flow sensor with wind-driven energy harvesting capability , 2012 .
[263] D. Kwong,et al. Optimization of NEMS pressure sensors with a multilayered diaphragm using silicon nanowires as piezoresistive sensing elements , 2012 .
[264] Chengkuo Lee,et al. Modeling and Experimental Study of a Low-Frequency-Vibration-Based Power Generator Using ZnO Nanowire Arrays , 2012, Journal of Microelectromechanical Systems.
[265] Chengkuo Lee,et al. A new S-shaped MEMS PZT cantilever for energy harvesting from low frequency vibrations below 30 Hz , 2012 .
[266] Jin Xie,et al. A three-axis SOI accelerometer sensing with both in-plane and vertical comb electrodes , 2012 .
[267] Chengkuo Lee,et al. Investigation of a MEMS piezoelectric energy harvester system with a frequency-widened-bandwidth mechanism introduced by mechanical stoppers , 2012 .
[268] Zhong Lin Wang,et al. Flexible triboelectric generator , 2012 .
[269] Ines Hafizovic,et al. Design and implementation of a MEMS microphone array system for real-time speech acquisition , 2012 .
[270] Chengkuo Lee,et al. Piezoresistive silicon nanowire based nanoelectromechanical system cantilever air flow sensor , 2012 .
[271] Chengkuo Lee,et al. Silicon two-dimensional phononic crystal resonators using alternate defects , 2011 .
[272] Chengkuo Lee,et al. A scrape-through piezoelectric MEMS energy harvester with frequency broadband and up-conversion behaviors , 2011 .
[273] Chengkuo Lee,et al. Characterization of Silicon Nanowire Embedded in a MEMS Diaphragm Structure Within Large Compressive Strain Range , 2011, IEEE Electron Device Letters.
[274] Chengkuo Lee,et al. Piezoelectric MEMS Energy Harvester for Low-Frequency Vibrations With Wideband Operation Range and Steadily Increased Output Power , 2011, Journal of Microelectromechanical Systems.
[275] G. Whitesides,et al. Paper-based piezoresistive MEMS sensors. , 2011, Lab on a chip.
[276] J. Xie,et al. Compact electrode design for an in-plane accelerometer on SOI with refilled isolation trench , 2011, 2011 16th International Solid-State Sensors, Actuators and Microsystems Conference.
[277] Chengkuo Lee,et al. Experimental Investigation of a Cavity-Mode Resonator Using a Micromachined Two-Dimensional Silicon Phononic Crystal in a Square Lattice , 2011, IEEE Electron Device Letters.
[278] Salvatore Sessa,et al. Towards Miniaturization of a MEMS-Based Wearable Motion Capture System , 2011, IEEE Transactions on Industrial Electronics.
[279] Chengkuo Lee,et al. Seal and encapsulate cavities for complementary metal-oxide-semiconductor microelectromechanical system thermoelectric power generators , 2011 .
[280] Young-Jun Park,et al. Sound‐Driven Piezoelectric Nanowire‐Based Nanogenerators , 2010, Advanced materials.
[281] Chengkuo Lee,et al. Non-resonant electromagnetic wideband energy harvesting mechanism for low frequency vibrations , 2010 .
[282] Chengkuo Lee,et al. A MEMS rotary comb mechanism for harvesting the kinetic energy of planar vibrations , 2010 .
[283] Chengkuo Lee,et al. Computational Study of Photonic Crystals Nano-Ring Resonator for Biochemical Sensing , 2010, IEEE Sensors Journal.
[284] Mark R. Prausnitz,et al. Dissolving Polymer Microneedle Patches for Influenza Vaccination , 2010, Nature Medicine.
[285] Einar Halvorsen,et al. Piezoelectric MEMS energy harvesting systems driven by harmonic and random vibrations , 2010, IEEE Transactions on Ultrasonics, Ferroelectrics and Frequency Control.
[286] Chengkuo Lee,et al. Hybrid energy harvester based on piezoelectric and electromagnetic mechanisms , 2010 .
[287] Chengkuo Lee,et al. Design, Fabrication, and Characterization of CMOS MEMS-Based Thermoelectric Power Generators , 2010, Journal of Microelectromechanical Systems.
[288] Chengkuo Lee,et al. Characterization of heavily doped polysilicon films for CMOS-MEMS thermoelectric power generators , 2009 .
[289] Chengkuo Lee,et al. Theoretical comparison of the energy harvesting capability among various electrostatic mechanisms from structure aspect , 2009 .
[290] Srinivas Tadigadapa,et al. Piezoelectric MEMS sensors: state-of-the-art and perspectives , 2009 .
[291] Takashi Masuda,et al. Ultra-Low Power Event-Driven Wireless Sensor Node Using Piezoelectric Accelerometer for Health Monitoring , 2009 .
[292] Chengkuo Lee,et al. A Wideband Electromagnetic Energy Harvester for Random Vibration Sources , 2009 .
[293] Octavian Postolache,et al. Unobstrusive heart rate and respiratory rate monitor embedded on a wheelchair , 2009, 2009 IEEE International Workshop on Medical Measurements and Applications.
[294] Chengkuo Lee,et al. Design and optimization of wafer bonding packaged microelectromechanical systems thermoelectric power generators with heat dissipation path , 2009 .
[295] J. H. He,et al. Development of microfluidic device and system for breast cancer cell fluorescence detection , 2009 .
[296] S. Richards,et al. Hewlett Packard's inkjet MEMS technology: past, present, and future , 2009, Defense + Commercial Sensing.
[297] Chengkuo Lee,et al. Electromagnetic energy harvesting from vibrations of multiple frequencies , 2009 .
[298] Chengkuo Lee,et al. Biomicrofluidic lab-on-chip device for cancer cell detection , 2008 .
[299] Chitta Saha,et al. Modeling and experimental investigation of an AA-sized electromagnetic generator for harvesting energy from human motion , 2008, Smart Materials and Structures.
[300] Valentina Bianchi,et al. Fall detection and gait analysis in a smart-home environment , 2008 .
[301] Roger K. Moore. PRESENCE: A Human-Inspired Architecture for Speech-Based Human-Machine Interaction , 2007, IEEE Transactions on Computers.
[302] Eric M. Yeatman,et al. Performance limits of the three MEMS inertial energy generator transduction types , 2007 .
[303] Masako Tanaka,et al. An industrial and applied review of new MEMS devices features , 2007 .
[304] Robert Bogue,et al. MEMS sensors: past, present and future , 2007 .
[305] Zhong Lin Wang,et al. Piezoelectric Nanogenerators Based on Zinc Oxide Nanowire Arrays , 2006, Science.
[306] R N Miles,et al. The Development of a Biologically-Inspired Directional Microphone for Hearing Aids , 2006, Audiology and Neurotology.
[307] Chengkuo Lee,et al. Development of X-beam electrothermal actuators , 2005 .
[308] Chengkuo Lee,et al. Design and modeling for comb drive actuator with enlarged static displacement , 2004 .
[309] Chengkuo Lee,et al. Characterization of Bi-Stable Micromechanism Based on Buckle Spring and Electrothermal V-Beam Actuators , 2004 .
[310] Chengkuo Lee,et al. Development of Electrothermal Actuator with Optimized Motion Characteristics , 2003 .
[311] Chengkuo Lee,et al. Development and Application of Lateral Comb-Drive Actuator , 2003 .
[312] Naokatsu Yamamoto,et al. Electrical power generation from a knitted wire panel using the thermoelectric effect , 2002 .
[313] Jack W. Judy,et al. Microelectromechanical systems (MEMS): fabrication, design and applications , 2001 .
[314] David J. Mooney,et al. Controlled Drug Delivery from Polymers by Mechanical Signals , 2001 .
[315] Chengkuo Lee,et al. Application of sol–gel deposited thin PZT film for actuation of 1D and 2D scanners , 1999 .
[316] T. Itoh,et al. Self-excited piezoelectric PZT microcantilevers for dynamic SFM—with inherent sensing and actuating capabilities , 1999 .
[317] D. R. Sparks,et al. Application of MEMS technology in automotive sensors and actuators , 1998, MHA'98. Proceedings of the 1998 International Symposium on Micromechatronics and Human Science. - Creation of New Industry - (Cat. No.98TH8388).
[318] R. Maeda,et al. Application of sol-gel deposited thin PZT film for actuation of 1D and 2D scanners , 1998, Proceedings MEMS 98. IEEE. Eleventh Annual International Workshop on Micro Electro Mechanical Systems. An Investigation of Micro Structures, Sensors, Actuators, Machines and Systems (Cat. No.98CH36176.
[319] Gregory J. Manlove,et al. A Remotely Mounted Crash Detection System , 1997 .
[320] Chengkuo Lee,et al. Development of a piezoelectric self-excitation and self-detection mechanism in PZT microcantilevers for dynamic scanning force microscopy in liquid , 1997 .
[321] T. Itoh,et al. Sol–gel derived PNNZT thin films for micromachined piezoelectric force sensors , 1997 .
[322] Chengkuo Lee,et al. Deflection detection and feedback actuation using a self‐excited piezoelectric Pb(Zr,Ti)O3 microcantilever for dynamic scanning force microscopy , 1996 .
[323] Chengkuo Lee,et al. Sol-gel derived PZT force sensor for scanning force microscopy , 1996 .
[324] J.M. Younse,et al. Mirrors on a chip , 1993, IEEE Spectrum.
[325] P. Barth,et al. Silicon micromechanical devices , 1983 .
[326] E. Spotts,et al. A Disposable Blood Pressure Transducer System , 1982, Journal of clinical engineering.
[327] Spotts Dl,et al. A disposable blood pressure transducer system. , 1982 .
[328] K.E. Petersen,et al. Silicon as a mechanical material , 1982, Proceedings of the IEEE.
[329] H. Nathanson,et al. The resonant gate transistor , 1967 .
[330] Charles S. Smith. Piezoresistance Effect in Germanium and Silicon , 1954 .
[331] Fei Wang,et al. A comprehensive study of non-linear air damping and “pull-in” effects on the electrostatic energy harvesters , 2020 .
[332] Qiongfeng Shi,et al. Battery-free short-range self-powered wireless sensor network (SS-WSN) using TENG based direct sensory transmission (TDST) mechanism , 2020 .
[333] Zhong Lin Wang,et al. 3D double-faced interlock fabric triboelectric nanogenerator for bio-motion energy harvesting and as self-powered stretching and 3D tactile sensors , 2020 .
[334] Steve Beeby,et al. Recent progress on textile-based triboelectric nanogenerators , 2019, Nano Energy.
[335] Liwei Lin,et al. Ultrasonic imaging of muscle-like phantoms using bimorph pmuts toward wearable muscle disorder diagnost ICS , 2018, 2018 IEEE Micro Electro Mechanical Systems (MEMS).
[336] Tal Dvir,et al. Tissue–electronics interfaces: from implantable devices to engineered tissues , 2018 .
[337] Zhiming Lin,et al. Large‐Scale and Washable Smart Textiles Based on Triboelectric Nanogenerator Arrays for Self‐Powered Sleeping Monitoring , 2018 .
[338] Sung Kyu Park,et al. Recent Progress of Textile-Based Wearable Electronics: A Comprehensive Review of Materials, Devices, and Applications. , 2018, Small.
[339] Zhong‐Lin Wang,et al. Single‐Thread‐Based Wearable and Highly Stretchable Triboelectric Nanogenerators and Their Applications in Cloth‐Based Self‐Powered Human‐Interactive and Biomedical Sensing , 2017 .
[340] Takeshi Kobayashi,et al. MEMS based piezoelectric ultrasonic energy harvester for self-powered under-water applications , 2016, 2016 IEEE 29th International Conference on Micro Electro Mechanical Systems (MEMS).
[341] Xu Mao,et al. A novel MEMS electromagnetic actuator with large displacement , 2015 .
[342] Mengdi Han,et al. Design and Fabrication of Integrated Magnetic MEMS Energy Harvester for Low Frequency Applications , 2014, Journal of Microelectromechanical Systems.
[343] Elena A. Lomonova,et al. Acoustic Energy Transfer: A Review , 2013, IEEE Transactions on Industrial Electronics.
[344] Chengkuo Lee,et al. A MEMS-based piezoelectric cantilever patterned with PZT thin film array for harvesting energy from low frequency vibrations , 2011 .
[345] Chengkuo Lee,et al. Investigation of piezoelectric MEMS-based wideband energy harvesting system with assembled frequency-up-conversion mechanism , 2011 .
[346] K. N. Bhat. Micromachining for Microelectromechanical Systems , 1998 .
[347] Modeling and experimental verification of low-frequency MEMS energy harvesting from ambient vibrations , 2022 .