Vibration‐based piezoelectric, electromagnetic, and hybrid energy harvesters for microsystems applications: A contributed review
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Pg Emeroylariffion Abas | Farid Ullah Khan | Brahim Aïssa | Asif Iqbal | Brahim Aissa | Pg Emeroylariffion Abas | Quentin Cheok | Malik M. Nauman | Muhammad Iqbal | Muhammad Iqbal | Malik Muhammad Nauman | Asif Iqbal | F. Khan | M. Iqbal | P. E. Abas | M. M. Nauman | B. Aissa | A. Iqbal | Q. Cheok
[1] Lukai Guo,et al. Potentials of piezoelectric and thermoelectric technologies for harvesting energy from pavements , 2017 .
[2] M. N Fakhzan,et al. Vibration based energy harvesting using piezoelectric material , 2011, 2011 4th International Conference on Mechatronics (ICOM).
[3] Mohammad Reza Aghamohammadi,et al. A new approach for optimal sizing of battery energy storage system for primary frequency control of islanded Microgrid , 2014 .
[4] D. Inman,et al. A Review of Power Harvesting from Vibration using Piezoelectric Materials , 2004 .
[5] Fengshou Gu,et al. Energy Harvesting Technologies for Achieving Self-Powered Wireless Sensor Networks in Machine Condition Monitoring: A Review , 2018, Sensors.
[6] K. Najafi,et al. Non-resonant bi-stable frequency-increased power scavenger from low-frequency ambient vibration , 2009, TRANSDUCERS 2009 - 2009 International Solid-State Sensors, Actuators and Microsystems Conference.
[7] L. Wang,et al. Design of high-efficiency electromagnetic energy harvester based on a rolling magnet , 2019, Energy Conversion and Management.
[8] Qinxue Tan,et al. Hybrid piezoelectric-electromagnetic energy harvester for scavenging energy from low-frequency excitations , 2018, Smart Materials and Structures.
[9] 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.
[10] Won Jun Choi,et al. A highly-efficient, concentrating-photovoltaic/thermoelectric hybrid generator , 2017 .
[11] Celal Batur,et al. Design, modeling, and analysis of a high performance piezoelectric energy harvester for intelligent tires , 2019, International Journal of Energy Research.
[12] Kwok Hung Li,et al. A study of piezoelectric harvesters for low-level vibrations in wireless sensor networks , 2013 .
[13] Ying-Hao Chu,et al. Ultrasensitivity of self-powered wireless triboelectric vibration sensor for operating in underwater environment based on surface functionalization of rice husks , 2019, Nano Energy.
[14] Ann Marie Sastry,et al. Powering MEMS portable devices—a review of non-regenerative and regenerative power supply systems with special emphasis on piezoelectric energy harvesting systems , 2008 .
[15] Meihong Wang,et al. Energy storage technologies and real life applications – A state of the art review , 2016 .
[16] R. Dharmasena,et al. Towards optimized triboelectric nanogenerators , 2019, Nano Energy.
[17] Toshikazu Nishida,et al. A MEMS acoustic energy harvester , 2006 .
[18] Dhiman Mallick,et al. MEMS-Based Vibrational Energy Harvesting and Conversion Employing Micro-/Nano-Magnetics , 2019, IEEE Transactions on Magnetics.
[19] Kangqi Fan,et al. Capturing energy from ultra-low frequency vibrations and human motion through a monostable electromagnetic energy harvester , 2019, Energy.
[20] Qiang He,et al. An airtight-cavity-structural triboelectric nanogenerator-based insole for high performance biomechanical energy harvesting. , 2019, Nanoscale.
[21] Bruce J. Tatarchuk,et al. Characterization of asymmetric ultracapacitors as hybrid pulse power devices for efficient energy storage and power delivery applications , 2016 .
[22] S. Beeby,et al. A novel thick-film piezoelectric micro-generator , 2001 .
[23] Yamin Leprince-Wang,et al. Flexible piezoelectric nanogenerators based on PVDF-TrFE nanofibers , 2017 .
[24] Hassan Zohoor,et al. On the energy extraction from large amplitude vibrations of MEMS-based piezoelectric harvesters , 2017 .
[25] L. Tender,et al. Harvesting Energy from the Marine Sediment−Water Interface , 2001 .
[26] Ali Maher,et al. Laboratory testing and numerical simulation of piezoelectric energy harvester for roadway applications , 2018, Applied Energy.
[27] Ottorino Veneri,et al. Experimental investigation into the effectiveness of a super-capacitor based hybrid energy storage system for urban commercial vehicles , 2017, Applied Energy.
[28] T. Galchev,et al. Harvesting traffic-induced bridge vibrations , 2011, 2011 16th International Solid-State Sensors, Actuators and Microsystems Conference.
[29] Empirical Analysis of Energy Consumption of Acceleration-Based Wireless Sensor Nodes Used for Pipeline Monitoring , 2017 .
[30] H. Morikawa,et al. Ubiquitous Structural Monitoring using Wireless Sensor Networks , 2006, 2006 International Symposium on Intelligent Signal Processing and Communications.
[31] Farid Ullah Khan,et al. Development of a testing rig for vibration and wind based energy harvesters , 2016 .
[32] Xiaodi Zhang,et al. Transparent and stretchable triboelectric nanogenerator for self-powered tactile sensing , 2019, Nano Energy.
[33] C. Van Hoof,et al. Micropower energy harvesting , 2009, ESSDERC 2009.
[34] Ahmed M. R. Fath El-Bab,et al. A review on design improvements and techniques for mechanical energy harvesting using piezoelectric and electromagnetic schemes , 2019, Energy Conversion and Management.
[35] Pamela J Schreiner,et al. Clinical utility of genotyping the 677C>T variant of methylenetetrahydrofolate reductase in humans is decreased in the post-folic acid fortification era. , 2009, The Journal of nutrition.
[36] Abhiman Hande,et al. Indoor solar energy harvesting for sensor network router nodes , 2007, Microprocess. Microsystems.
[37] Ji Sun Yun,et al. Wearable Core-Shell Piezoelectric Nanofiber Yarns for Body Movement Energy Harvesting , 2019, Nanomaterials.
[38] Jaeyun Lee,et al. Strain-based piezoelectric energy harvesting for wireless sensor systems in a tire , 2015 .
[39] Faruq Muhammad Foong,et al. Effect of Repulsive Magnetic Poles on the Natural Frequency and the Bandwidth of a Vibration Energy Harvester , 2018, Journal of Physics: Conference Series.
[40] Aminur Rashid Chowdhury,et al. Lithium doped zinc oxide based flexible piezoelectric-triboelectric hybrid nanogenerator , 2019, Nano Energy.
[41] D. Inman,et al. Nonlinear piezoelectricity in electroelastic energy harvesters: Modeling and experimental identification , 2010 .
[42] K. Fan,et al. Scavenging energy from ultra-low frequency mechanical excitations through a bi-directional hybrid energy harvester , 2018 .
[43] Paul K. Wright,et al. A piezoelectric vibration based generator for wireless electronics , 2004 .
[44] Xinxin Li,et al. Two-Stage Wideband Energy Harvester Driven by Multimode Coupled Vibration , 2015, IEEE/ASME Transactions on Mechatronics.
[45] L. Cao,et al. Design and Test of the MEMS Coupled Piezoelectric–Electromagnetic Energy Harvester , 2019, International Journal of Precision Engineering and Manufacturing.
[46] T. Galchev,et al. Micro Power Generator for Harvesting Low-Frequency and Nonperiodic Vibrations , 2011, Journal of Microelectromechanical Systems.
[47] Jae Y. Park,et al. A multimodal hybrid energy harvester based on piezoelectric-electromagnetic mechanisms for low-frequency ambient vibrations , 2018, Energy Conversion and Management.
[48] Bo Zhang,et al. Model and Experimental Research on an Electromagnetic Vibration-Powered Generator With Annular Permanent Magnet Spring , 2012, IEEE Transactions on Applied Superconductivity.
[49] James F Rusling,et al. All printable snow-based triboelectric nanogenerator. , 2019, Nano energy.
[50] Marco Ferrari,et al. Piezoelectric buckled beams for random vibration energy harvesting , 2012 .
[51] Justin C. Biffinger,et al. High power density from a miniature microbial fuel cell using Shewanella oneidensis DSP10. , 2006, Environmental science & technology.
[52] Skandar Basrour,et al. A MEMS piezoelectric vibration energy harvesting device , 2005 .
[53] J. Rastegar,et al. Novel two-stage piezoelectric-based ocean wave energy harvesters for moored or unmoored buoys , 2009, Smart Structures and Materials + Nondestructive Evaluation and Health Monitoring.
[54] E. Halvorsen. Fundamental issues in nonlinear wideband-vibration energy harvesting. , 2012, Physical review. E, Statistical, nonlinear, and soft matter physics.
[55] Yilong Han,et al. Piezoelectric materials for sustainable building structures: Fundamentals and applications , 2019, Renewable and Sustainable Energy Reviews.
[56] Jihong Wang,et al. Optimal selection of air expansion machine in compressed air energy storage : a review , 2018 .
[57] Long Lin,et al. A Nanogenerator for Energy Harvesting from a Rotating Tire and its Application as a Self‐Powered Pressure/Speed Sensor , 2011, Advanced materials.
[58] Satoshi Iizumi,et al. Improved Performances of Acoustic Energy Harvester Fabricated Using Sol/Gel Lead Zirconate Titanate Thin Film , 2011 .
[59] I. Ahmad,et al. Design and modeling of a smart insole hybrid energy harvester , 2018 .
[60] Keon Jae Lee,et al. Bendable inorganic thin-film battery for fully flexible electronic systems. , 2012, Nano letters.
[61] Lawrence C. Freudinger,et al. Aircraft Ground Vibration Testing at the NASA Dryden Flight Research Facility - 1993 , 1994 .
[62] Wei-Hsin Liao,et al. Magnetic-spring based energy harvesting from human motions: Design, modeling and experiments , 2017 .
[63] Einar Halvorsen,et al. Design and Modeling of a Patterned-Electret-Based Energy Harvester for Tire Pressure Monitoring Systems , 2012, IEEE/ASME Transactions on Mechatronics.
[64] Teuku Meurah Indra Mahlia,et al. A review on insulation materials for energy conservation in buildings , 2017 .
[65] Ruud Vullers,et al. A review of the present situation and future developments of micro‐batteries for wireless autonomous sensor systems , 2012 .
[66] P. Wright,et al. A SELF-POWERED WIRELESS SENSOR FOR INDOOR ENVIRONMENTAL MONITORING , 2004 .
[67] Hong Hu,et al. Modeling and experimental investigation of an impact-driven piezoelectric energy harvester from human motion , 2013 .
[68] H. J. van de Wiel,et al. Direct strain energy harvesting in automobile tires using piezoelectric PZT–polymer composites , 2011 .
[69] Farid Ullah Khan,et al. Electromagnetic Bridge Energy Harvester Utilizing Bridge's Vibrations and Ambient Wind for Wireless Sensor Node Application , 2018, J. Sensors.
[70] Zhong Lin Wang,et al. Hybridized electromagnetic-triboelectric nanogenerator for scavenging biomechanical energy for sustainably powering wearable electronics. , 2015, ACS nano.
[71] Danick Briand,et al. The realization and performance of vibration energy harvesting MEMS devices based on an epitaxial piezoelectric thin film , 2011 .
[72] Chunkai Qiu,et al. Triboelectric single-electrode-output control interface using patterned grid electrode , 2019, Nano Energy.
[73] Raj Naidoo,et al. A hybrid piezoelectric micro-power generator for use in low power applications , 2015 .
[74] M. Rajarathinam,et al. Energy generation in a hybrid harvester under harmonic excitation , 2018 .
[75] Akira Todoroki,et al. Wireless Monitoring of Automobile Tires for Intelligent Tires , 2008, Sensors.
[76] Zhuo Kang,et al. Green hybrid power system based on triboelectric nanogenerator for wearable/portable electronics , 2019, Nano Energy.
[77] Kailiang Ren,et al. Hybrid piezo/triboelectric nanogenerator for highly efficient and stable rotation energy harvesting , 2019, Nano Energy.
[78] Avijit Ghosh,et al. Power-generating footwear based on a triboelectric-electromagnetic-piezoelectric hybrid nanogenerator , 2019, Nano Energy.
[79] Aleksandar Milenkovic,et al. Journal of Neuroengineering and Rehabilitation Open Access a Wireless Body Area Network of Intelligent Motion Sensors for Computer Assisted Physical Rehabilitation , 2005 .
[80] Daniel J. Inman,et al. Powering pacemakers from heartbeat vibrations using linear and nonlinear energy harvesters , 2012 .
[81] Khalil Najafi,et al. Energy scavenging from insect flight , 2011 .
[82] Meiling Zhu,et al. Plucked Piezoelectric Bimorphs for Energy Harvesting , 2013 .
[83] Ali Bakhshandeh Rostami,et al. Renewable energy harvesting by vortex-induced motions: Review and benchmarking of technologies , 2017 .
[84] Celal Batur,et al. Optimization of a Rainbow Piezoelectric Energy Harvesting System for Tire Monitoring Applications , 2018, ASME 2018 12th International Conference on Energy Sustainability.
[85] Joeri Van Mierlo,et al. Data-driven health estimation and lifetime prediction of lithium-ion batteries: A review , 2019, Renewable and Sustainable Energy Reviews.
[86] Ahmed Wasif Reza,et al. Wireless powering by magnetic resonant coupling: Recent trends in wireless power transfer system and its applications , 2015 .
[87] Wei Wang,et al. A hybrid micro vibration energy harvester with power management circuit , 2015 .
[88] F. Castellino,et al. Plasminogen Activator Inhibitor-1 Protects Mice Against Cardiac Fibrosis by Inhibiting Urokinase-type Plasminogen Activator-mediated Plasminogen Activation , 2017, Scientific Reports.
[89] Khalil Najafi,et al. Harvesting traffic-induced vibrations for structural health monitoring of bridges , 2011 .
[90] Feng Qian,et al. Modeling and field-test of a compact electromagnetic energy harvester for railroad transportation , 2019, Applied Energy.
[91] Herb L. Hess,et al. Evaluation and Analysis of a New Solid-State Rechargeable Microscale Lithium Battery , 2008, IEEE Transactions on Industrial Electronics.
[92] Chenyang Xue,et al. Triboelectric-piezoelectric-electromagnetic hybrid nanogenerator for high-efficient vibration energy harvesting and self-powered wireless monitoring system , 2018 .
[93] Shadrach Roundy,et al. On the Effectiveness of Vibration-based Energy Harvesting , 2005 .
[94] M. Ahmadi,et al. Renewable energy harvesting with the application of nanotechnology: A review , 2018, International Journal of Energy Research.
[95] Pooi See Lee,et al. Progress on triboelectric nanogenerator with stretchability, self-healability and bio-compatibility , 2019, Nano Energy.
[96] E. Bibeau,et al. Riverine hydrokinetic resource assessment using low cost winter imagery , 2019, Renewable and Sustainable Energy Reviews.
[97] Yufeng Su,et al. Structure analysis and output performance of vibration energy harvester based on diamagnetic levitation , 2019, Energy Procedia.
[98] Jianxiong Zhao,et al. Optimization design and experimental investigation of piezoelectric energy harvesting devices for pavement , 2018, Applied Energy.
[99] Mostafa Soliman,et al. Design and Development of an Electromagnetic Micropower Generator for Activity Tracking , 2018, 2018 Twentieth International Middle East Power Systems Conference (MEPCON).
[100] Henry A. Sodano,et al. A review of power harvesting using piezoelectric materials (2003–2006) , 2007 .
[101] Ronald W. Yeung,et al. Piezoelectric devices for ocean energy: a brief survey , 2015 .
[102] Elham Sahraei,et al. Investigation of the deformation mechanisms of lithium-ion battery components using in-situ micro tests , 2018, Applied Energy.
[103] Maissa Farhat,et al. A new maximum power point method based on a sliding mode approach for solar energy harvesting , 2017 .
[104] Dasheng Lee. Wireless and Powerless Sensing Node System Developed for Monitoring Motors , 2008, Sensors.
[105] Juliana Zaini,et al. Life cycle assessment, energy balance and sensitivity analysis of bioethanol production from microalgae in a tropical country , 2019, Renewable and Sustainable Energy Reviews.
[106] Li Wang,et al. Three-Dimensional Macroporous Carbon/Fe3O4-Doped Porous Carbon Nanorods for High-Performance Supercapacitor , 2016 .
[107] Chengkuo Lee,et al. Piezoelectric MEMS-based wideband energy harvesting systems using a frequency-up-conversion cantilever stopper , 2012 .
[108] Anna C. Gilbert,et al. Compressed sensing embedded in an operational wireless sensor network to achieve energy efficiency in long-term monitoring applications , 2014 .
[109] Daining Fang,et al. Basic Equations of Piezoelectric Materials , 2013 .
[110] Cheng-Kuo Sung,et al. Design of a frequency-adjusting device for harvesting energy from a rotating wheel , 2010 .
[111] Tarik Bourouina,et al. Bistable electromagnetic generator based on buckled beams for vibration energy harvesting , 2014 .
[112] Mohammad Reza Safaei,et al. Energy harvesting from fluid flow using piezoelectrics: A critical review , 2019 .
[113] Farid Ullah Khan,et al. Hybrid vibration and wind energy harvesting using combined piezoelectric and electromagnetic conversion for bridge health monitoring applications , 2018, Energy Conversion and Management.
[114] Håkan Olin,et al. Interaction of the human body with triboelectric nanogenerators , 2019, Nano Energy.
[115] Skandar Basrour,et al. Design, modelling and optimisation of integrated piezoelectric micro power generators , 2005 .
[116] Noureddine Bouhaddi,et al. Effect of the localization on the response of a quasi-periodic electromagnetic oscillator array for vibration energy harvesting , 2018 .
[117] Qi-Hui Wu,et al. Three-dimensional Sn-graphene anode for high-performance lithium-ion batteries. , 2013, Nanoscale.
[118] Mohammad Reza Safaei,et al. Performance Enhancement of Internal Combustion Engines through Vibration Control: State of the Art and Challenges , 2019, Applied Sciences.
[119] Salim Newaz Kazi,et al. A comprehensive literature review of bio-fuel performance in internal combustion engine and relevant costs involvement , 2014 .
[120] Pranay Podder,et al. Multi-frequency MEMS electromagnetic energy harvesting , 2017 .
[121] Muhammad Waqas,et al. Fuzzy logic approach for investigation of microstructure and mechanical properties of Sn96.5-Ag3.0-Cu0.5 lead free solder alloy , 2017 .
[122] Vesselin Stoilov,et al. Power Generation from Airflow Induced Vibrations , 2015 .
[123] Young Jae Song,et al. Metal nanowire–polymer matrix hybrid layer for triboelectric nanogenerator , 2019, Nano Energy.
[124] Ping Li,et al. Study on the Output Performance of a Nonlinear Hybrid Piezoelectric-Electromagnetic Harvester under Harmonic Excitation , 2019, Acoustics.
[125] Alibakhsh Kasaeian,et al. Modeling and optimization of an air-cooled photovoltaic thermal (PV/T) system using genetic algorithms , 2013 .
[126] Won Seop Hwang,et al. Piezoelectric device operating as sensor and harvester to drive switching circuit in LED shoes , 2019, Energy.
[127] Igor Neri,et al. Vibration Energy Harvesting: Linear and Nonlinear Oscillator Approaches , 2011 .
[128] Xingjian Jing,et al. A comprehensive review on vibration energy harvesting: Modelling and realization , 2017 .
[129] Heath Hofmann,et al. Adaptive piezoelectric energy harvesting circuit for wireless remote power supply , 2002 .
[130] Jan M. Rabaey,et al. PicoRadio Supports Ad Hoc Ultra-Low Power Wireless Networking , 2000, Computer.
[131] Dominique Siegert,et al. Piezoelectric energy harvesting from traffic-induced bridge vibrations , 2013 .
[132] Jaeyun Lee,et al. Development of a piezoelectric energy harvesting system for implementing wireless sensors on the tires , 2014 .
[133] David E. Culler,et al. Design and Implementation of Scalable Wireless Sensor Network for Structural Monitoring , 2008 .
[134] Jennifer A. Rice,et al. Flexible smart sensor framework for autonomous full-scale structural health monitoring , 2009 .
[135] Bo Chen,et al. Design of a Multi-Modal and High Computation Power Wireless Sensor Node for Structural Health Monitoring , 2008, 2008 IEEE/ASME International Conference on Mechtronic and Embedded Systems and Applications.
[136] S. Priya. Advances in energy harvesting using low profile piezoelectric transducers , 2007 .
[137] Muhammad R. Hajj,et al. A multi-frequency piezoelectric vibration energy harvester with liquid filled container as the proof mass , 2019, Applied Physics Letters.
[138] Farid Ullah Khan,et al. Vibration-based electromagnetic type energy harvester for bridge monitoring sensor application , 2014, 2014 International Conference on Emerging Technologies (ICET).
[139] B. Mann,et al. Nonlinear dynamics for broadband energy harvesting: Investigation of a bistable piezoelectric inertial generator , 2010 .
[140] Farid Ullah Khan,et al. Copper foil-type vibration-based electromagnetic energy harvester , 2010 .
[141] Farid Ullah Khan,et al. Multimodal Hybrid Piezoelectric-Electromagnetic Insole Energy Harvester Using PVDF Generators , 2020, Electronics.
[142] Adolf Acquaye,et al. Perovskite solar cells: An integrated hybrid lifecycle assessment and review in comparison with other photovoltaic technologies , 2017 .
[143] Grzegorz Litak,et al. Magnetopiezoelastic energy harvesting driven by random excitations , 2010 .
[144] Mohammad Behroozi,et al. Modeling of Strain Energy Harvesting in Pneumatic Tires Using Piezoelectric Transducer , 2014 .
[145] Saman Farhangdoust,et al. Bistable wind-induced vibration energy harvester for self-powered wireless sensors in smart bridge monitoring systems , 2019, Smart Structures and Materials + Nondestructive Evaluation and Health Monitoring.
[146] Pranay Podder,et al. Magnetic Tuning of Nonlinear MEMS Electromagnetic Vibration Energy Harvester , 2017, Journal of Microelectromechanical Systems.
[147] Sang-Gook Kim,et al. MEMS power generator with transverse mode thin film PZT , 2005 .
[148] Nicu Bizon,et al. Analytical and experimental studies on a new linear energy harvester , 2018, Canadian Journal of Physics.
[149] Shiqiao Gao,et al. Design and performance of hybrid piezoelectric-electromagnetic energy harvester with trapezoidal beam and magnet sleeve , 2019, Journal of Applied Physics.
[150] 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.
[151] Hongxing Yang,et al. Development of hybrid battery-supercapacitor energy storage for remote area renewable energy systems , 2015 .
[152] Jae Wan Kwon,et al. A micromachined energy harvester from a keyboard using combined electromagnetic and piezoelectric conversion , 2008 .
[153] Muhammad Usman,et al. Experimental validation of a novel piezoelectric energy harvesting system employing wake galloping phenomenon for a broad wind spectrum , 2018, Energy.
[154] Hao Wang,et al. Energy harvesting technologies in roadway and bridge for different applications – A comprehensive review , 2018 .
[155] Siak Piang Lim,et al. Modeling and analysis of micro piezoelectric power generators for micro-electromechanical-systems applications , 2004 .
[156] Meng Li,et al. Novel tunable broadband piezoelectric harvesters for ultralow-frequency bridge vibration energy harvesting , 2019 .
[157] Walied A. Moussa,et al. Low frequency piezoelectric energy harvesting at multi vibration mode shapes , 2015 .
[158] Sylvain Blayac,et al. Compact and high performance wind actuated venturi triboelectric energy harvester , 2019, Nano Energy.
[159] Saibal Roy,et al. Self-powered autonomous wireless sensor node using vibration energy harvesting , 2008 .
[160] Farid Ullah Khan,et al. A piezoelectric based energy harvester for simultaneous energy generation and vibration isolation , 2019, International Journal of Energy Research.
[161] M. Salman Leong,et al. Review of vibration‐based energy harvesting technology: Mechanism and architectural approach , 2018 .
[162] Sergio M. Savaresi,et al. Control of magnetorheological dampers for vibration reduction in a washing machine , 2009 .
[163] Farid Ullah Khan,et al. Electromagnetic-based bridge energy harvester using traffic-induced bridge's vibrations and ambient wind , 2016, 2016 International Conference on Intelligent Systems Engineering (ICISE).
[164] Ahmad Safari,et al. Optimized design of layered bridge transducer for piezoelectric energy harvesting from roadway , 2017 .
[165] N. Khare,et al. Flexible ZnO-PVDF/PTFE based piezo-tribo hybrid nanogenerator , 2018, Nano Energy.
[166] Celal Batur,et al. A Rainbow Piezoelectric Energy Harvesting System for Intelligent Tire Monitoring Applications , 2019, Journal of Energy Resources Technology.
[167] Chengkuo Lee,et al. Hybrid energy harvester based on piezoelectric and electromagnetic mechanisms , 2010 .
[168] Elena Blokhina,et al. A batch-fabricated electret-biased wideband MEMS vibration energy harvester with frequency-up conversion behavior powering a UHF wireless sensor node , 2016 .
[169] Jun Zou,et al. A review on heat and mechanical energy harvesting from human – Principles, prototypes and perspectives , 2018 .
[170] D. Dane Quinn,et al. The Effect of Non-linear Piezoelectric Coupling on Vibration-based Energy Harvesting , 2009 .
[171] K. A. Cook-Chennault,et al. Piezoelectric Energy Harvesting , 2008 .
[172] Jan M. Rabaey,et al. A study of low level vibrations as a power source for wireless sensor nodes , 2003, Comput. Commun..