Biomimetic strategies and technologies for artificial tactile sensory systems.
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[1] Puchuan Tan,et al. Artificial tactile perception smart finger for material identification based on triboelectric sensing , 2022, Science advances.
[2] Yulia Sandamirskaya,et al. Neuro-inspired electronic skin for robots , 2022, Science Robotics.
[3] Yuke Chen,et al. Perception‐to‐Cognition Tactile Sensing Based on Artificial‐Intelligence‐Motivated Human Full‐Skin Bionic Electronic Skin , 2022, Advanced materials.
[4] Zhong-Lin Wang,et al. Skin-inspired textile-based tactile sensors enable multifunctional sensing of wearables and soft robots , 2022, Nano Energy.
[5] T. Sakata,et al. Direct Electrochemical Signaling in Organic Electrochemical Transistors Comprising High-Conductivity Double-Network Hydrogels. , 2022, ACS applied materials & interfaces.
[6] Puchuan Tan,et al. Self‐Powered Gesture Recognition Wristband Enabled by Machine Learning for Full Keyboard and Multicommand Input , 2022, Advanced materials.
[7] C. Oddo,et al. Functional mimicry of Ruffini receptors with fibre Bragg gratings and deep neural networks enables a bio-inspired large-area tactile-sensitive skin , 2022, Nature Machine Intelligence.
[8] Jong-Hyun Ahn,et al. Rational design of high-performance wearable tactile sensors utilizing bioinspired structures/functions, natural biopolymers, and biomimetic strategies , 2022, Materials Science and Engineering: R: Reports.
[9] M. Sitti,et al. Smart materials: rational design in biosystems via artificial intelligence. , 2022, Trends in biotechnology.
[10] Diansheng Chen,et al. A Capacitive and Piezoresistive Hybrid Sensor for Long‐Distance Proximity and Wide‐Range Force Detection in Human–Robot Collaboration , 2021, Adv. Intell. Syst..
[11] Mengying Xie,et al. Multifunctional Soft Robotic Finger Based on a Nanoscale Flexible Temperature-Pressure Tactile Sensor for Material Recognition. , 2021, ACS applied materials & interfaces.
[12] Do Hwan Kim,et al. A Self‐Healing and Ionic Liquid Affiliative Polyurethane toward a Piezo 2 Protein Inspired Ionic Skin , 2021, Advanced Functional Materials.
[13] Junmeng Guo,et al. The self-powered artificial synapse mechanotactile sensing system by integrating triboelectric plasma and gas-ionic-gated graphene transistor , 2021, Nano Energy.
[14] Xiao-hua Ma,et al. A Skin-Inspired Artificial Mechanoreceptor for Tactile Enhancement and Integration. , 2021, ACS nano.
[15] Jae Hyun Kim,et al. Large‐Area Pixelized Optoelectronic Neuromorphic Devices with Multispectral Light‐Modulated Bidirectional Synaptic Circuits , 2021, Advanced materials.
[16] Serkan Keser,et al. Fiber optic tactile sensor for surface roughness recognition by machine learning algorithms , 2021, Sensors and Actuators A: Physical.
[17] D. Ginty,et al. The mechanosensory neurons of touch and their mechanisms of activation , 2021, Nature Reviews Neuroscience.
[18] Yan-cheng Wang,et al. Finger‐Skin‐Inspired Flexible Optical Sensor for Force Sensing and Slip Detection in Robotic Grasping , 2021, Advanced Materials Technologies.
[19] Kang-Il Song,et al. An artificial neural tactile sensing system , 2021, Nature Electronics.
[20] B. Hu,et al. Bio‐Inspired Hybrid Dielectric for Capacitive and Triboelectric Tactile Sensors with High Sensitivity and Ultrawide Linearity Range , 2021, Advanced materials.
[21] Jiecai Han,et al. A flexible ultra-sensitive triboelectric tactile sensor of wrinkled PDMS/MXene composite films for E-skin , 2021 .
[22] Wenzhen Yuan,et al. Soft magnetic skin for super-resolution tactile sensing with force self-decoupling , 2021, Science Robotics.
[23] K. Cho,et al. Fingerpad‐Inspired Multimodal Electronic Skin for Material Discrimination and Texture Recognition , 2021, Advanced science.
[24] Chengkuo Lee,et al. Making use of nanoenergy from human – Nanogenerator and self-powered sensor enabled sustainable wireless IoT sensory systems , 2021 .
[25] Xinyu Wu,et al. Tactile Surface Roughness Categorization With Multineuron Spike Train Distance , 2020, IEEE Transactions on Automation Science and Engineering.
[26] Yubo Fan,et al. Design of Robot-Assisted Task Involving Visuomotor Conflict for Identification of Proprioceptive Acuity , 2021, IEEE Transactions on Instrumentation and Measurement.
[27] Kyu-Ho Lee,et al. Artificially Intelligent Tactile Ferroelectric Skin , 2020, Advanced science.
[28] Tianyiyi He,et al. Technologies toward next generation human machine interfaces: From machine learning enhanced tactile sensing to neuromorphic sensory systems , 2020, Applied Physics Reviews.
[29] Elena O. Gracheva,et al. Lamellar cells in Pacinian and Meissner corpuscles are touch sensors , 2020, bioRxiv.
[30] Weiyi Chen,et al. Sequential in-situ route to synthesize novel composite hydrogels with excellent mechanical, conductive, and magnetic responsive properties , 2020 .
[31] Nicole L. Neubarth,et al. Meissner corpuscles and their spatially intermingled afferents underlie gentle touch perception , 2020, Science.
[32] Chengkuo Lee,et al. Machine Learning Glove Using Self‐Powered Conductive Superhydrophobic Triboelectric Textile for Gesture Recognition in VR/AR Applications , 2020, Advanced science.
[33] Ilana Nisky,et al. Stretching the skin immediately enhances perceived stiffness and gradually enhances the predictive control of grip force , 2020, eLife.
[34] Koh Hosoda,et al. Soft Inductive Tactile Sensor Using Flow-Channel Enclosing Liquid Metal , 2020, IEEE Robotics and Automation Letters.
[35] Yiyu Feng,et al. Highly Transparent, Self-Healable, and Adhesive Organogels for Bio-Inspired Intelligent Ionic Skins. , 2020, ACS applied materials & interfaces.
[36] Qiang Zheng,et al. Flexible and stretchable dual mode nanogenerator for rehabilitation monitoring and information interaction. , 2020, Journal of materials chemistry. B.
[37] Qiangfei Xia,et al. An artificial spiking afferent nerve based on Mott memristors for neurorobotics , 2020, Nature Communications.
[38] Allon M. Klein,et al. The emergence of transcriptional identity in somatosensory neurons , 2020, Nature.
[39] Ammar Belatreche,et al. A review of learning in biologically plausible spiking neural networks , 2019, Neural Networks.
[40] J. Zhao,et al. Graphene Synapses: Piezotronic Graphene Artificial Sensory Synapse (Adv. Funct. Mater. 41/2019) , 2019, Advanced Functional Materials.
[41] Anthony P F Turner,et al. Integrated Printed Microfluidic Biosensors. , 2019, Trends in biotechnology.
[42] Xu Wang,et al. A bimodal soft electronic skin for tactile and touchless interaction in real time , 2019, Nature Communications.
[43] Yeongjun Lee,et al. Flexible Neuromorphic Electronics for Computing, Soft Robotics, and Neuroprosthetics , 2019, Advanced materials.
[44] Xueming Li,et al. Structure and mechanogating of the mammalian tactile channel PIEZO2 , 2019, Nature.
[45] D. Ginty,et al. Deep Sequencing of Somatosensory Neurons Reveals Molecular Determinants of Intrinsic Physiological Properties , 2019, Neuron.
[46] F. McGlone,et al. An ultrafast system for signaling mechanical pain in human skin , 2019, Science Advances.
[47] Wojciech Matusik,et al. Learning the signatures of the human grasp using a scalable tactile glove , 2019, Nature.
[48] Changsoon Choi,et al. Self-Powered Pressure- and Vibration-Sensitive Tactile Sensors for Learning Technique-Based Neural Finger Skin. , 2019, Nano letters.
[49] Zhong Lin Wang,et al. Symbiotic cardiac pacemaker , 2019, Nature Communications.
[50] Lizhen Wang,et al. Design of Virtual Guiding Tasks With Haptic Feedback for Assessing the Wrist Motor Function of Patients With Upper Motor Neuron Lesions , 2019, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[51] Wei Yi,et al. Biological plausibility and stochasticity in scalable VO2 active memristor neurons , 2018, Nature Communications.
[52] Kara L. Marshall,et al. The mechanosensitive ion channel Piezo2 mediates sensitivity to mechanical pain in mice , 2018, Science Translational Medicine.
[53] Gang Liu,et al. A skin-inspired tactile sensor for smart prosthetics , 2018, Science Robotics.
[54] Nitish V. Thakor,et al. Prosthesis with neuromorphic multilayered e-dermis perceives touch and pain , 2018, Science Robotics.
[55] Xiaodong Chen,et al. An Artificial Sensory Neuron with Tactile Perceptual Learning , 2018, Advanced materials.
[56] Zhenan Bao,et al. A bioinspired flexible organic artificial afferent nerve , 2018, Science.
[57] Youngoh Lee,et al. Skin-Inspired Hierarchical Polymer Architectures with Gradient Stiffness for Spacer-Free, Ultrathin, and Highly Sensitive Triboelectric Sensors. , 2018, ACS nano.
[58] Sung Youb Kim,et al. Tailoring force sensitivity and selectivity by microstructure engineering of multidirectional electronic skins , 2018, NPG Asia Materials.
[59] K. Chun,et al. A Self‐Powered Sensor Mimicking Slow‐ and Fast‐Adapting Cutaneous Mechanoreceptors , 2018, Advances in Materials.
[60] Xiaodong Chen,et al. Auxetic Mechanical Metamaterials to Enhance Sensitivity of Stretchable Strain Sensors , 2018, Advanced materials.
[61] V. Ramachandran,et al. Human ability to discriminate surface chemistry by touch , 2018 .
[62] James M. Rehg,et al. Inferring Object Properties with a Tactile-Sensing Array Given Varying Joint Stiffness and Velocity , 2014, Int. J. Humanoid Robotics.
[63] Hongwei Zhu,et al. Recent advances in wearable tactile sensors: Materials, sensing mechanisms, and device performance , 2017 .
[64] Dukhyun Choi,et al. An Ultrasensitive, Visco‐Poroelastic Artificial Mechanotransducer Skin Inspired by Piezo2 Protein in Mammalian Merkel Cells , 2017, Advanced materials.
[65] J. Grandl,et al. Touch, Tension, and Transduction - The Function and Regulation of Piezo Ion Channels. , 2017, Trends in biochemical sciences.
[66] Zhenan Bao,et al. Pursuing prosthetic electronic skin. , 2016, Nature materials.
[67] Chwee Teck Lim,et al. Highly Flexible Graphene Oxide Nanosuspension Liquid-Based Microfluidic Tactile Sensor. , 2016, Small.
[68] G. Malliaras,et al. Neuromorphic Functions in PEDOT:PSS Organic Electrochemical Transistors , 2015, Advanced materials.
[69] T. Jessell,et al. Piezo2 is the principal mechanotransduction channel for proprioception , 2015, Nature Neuroscience.
[70] Zhenan Bao,et al. A chameleon-inspired stretchable electronic skin with interactive colour changing controlled by tactile sensing , 2015, Nature Communications.
[71] Sung Youb Kim,et al. Tactile-direction-sensitive and stretchable electronic skins based on human-skin-inspired interlocked microstructures. , 2014, ACS nano.
[72] Q. Ma,et al. Merkel Cells Are a Touchy Subject , 2014, Cell.
[73] A. Patapoutian,et al. Piezo2 is required for Merkel cell mechanotransduction , 2014, Nature.
[74] D. Ginty,et al. The Sensory Neurons of Touch , 2013, Neuron.
[75] Gordon Cheng,et al. Directions Toward Effective Utilization of Tactile Skin: A Review , 2013, IEEE Sensors Journal.
[76] Yonggang Huang,et al. Multifunctional Epidermal Electronics Printed Directly Onto the Skin , 2013, Advanced materials.
[77] R Stanley Williams,et al. Sub-100 fJ and sub-nanosecond thermally driven threshold switching in niobium oxide crosspoint nanodevices , 2012, Nanotechnology.
[78] Oliver G. B. Garrod,et al. Facial expressions of emotion are not culturally universal , 2012, Proceedings of the National Academy of Sciences.
[79] Manuela Schmidt,et al. Piezo1 and Piezo2 Are Essential Components of Distinct Mechanically Activated Cation Channels , 2010, Science.
[80] Giulio Sandini,et al. Tactile Sensing—From Humans to Humanoids , 2010, IEEE Transactions on Robotics.
[81] Rajnikant V. Patel,et al. Robot-assisted Tactile Sensing for Minimally Invasive Tumor Localization , 2009, Int. J. Robotics Res..
[82] Eugene M. Izhikevich,et al. Simple model of spiking neurons , 2003, IEEE Trans. Neural Networks.
[83] Wulfram Gerstner,et al. Coding properties of spiking neurons: reverse and cross-correlations , 2001, Neural Networks.
[84] Kenneth O. Johnson,et al. Tactile Functions of Mechanoreceptive Afferents Innervating the Hand , 2000, Journal of clinical neurophysiology : official publication of the American Electroencephalographic Society.
[85] A. Hodgkin,et al. A quantitative description of membrane current and its application to conduction and excitation in nerve , 1990, Bulletin of mathematical biology.
[86] Y. Ovchinnikov. Physico-chemical basis of ion transport through biological membranes: ionophores and ion channels. , 1979, European journal of biochemistry.
[87] M. R. Chambers,et al. The structure and function of the slowly adapting type II mechanoreceptor in hairy skin. , 1972, Quarterly journal of experimental physiology and cognate medical sciences.
[88] V. Mountcastle,et al. The sense of flutter-vibration: comparison of the human capacity with response patterns of mechanoreceptive afferents from the monkey hand. , 1968, Journal of neurophysiology.
[89] N. Cauna. Nature and functions of the papillary ridges of the digital skin , 1954, The Anatomical record.