From neuromorphic to neurohybrid: transition from the emulation to the integration of neuronal networks
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[1] Qingqing Sun,et al. Organic Optoelectronic Synaptic Devices for Energy-Efficient Neuromorphic Computing , 2022, IEEE Electron Device Letters.
[2] George D. Spyropoulos,et al. Ionic communication for implantable bioelectronics , 2022, Science advances.
[3] D. Akinwande,et al. Metaplastic and energy-efficient biocompatible graphene artificial synaptic transistors for enhanced accuracy neuromorphic computing , 2022, Nature Communications.
[4] Gregory L Brown,et al. Transcranial electrical stimulation in neurological disease , 2022, Neural regeneration research.
[5] M. Berggren,et al. Organic electrochemical neurons and synapses with ion mediated spiking , 2022, Nature Communications.
[6] L. Fadiga,et al. Poly(3,4‐ethylenedioxythiophene)‐Based Neural Interfaces for Recording and Stimulation: Fundamental Aspects and In Vivo Applications , 2022, Advanced science.
[7] Peixun Zhang,et al. Application of Hybrid Electrically Conductive Hydrogels Promotes Peripheral Nerve Regeneration , 2022, Gels.
[8] Catherine D. Schuman,et al. Opportunities for neuromorphic computing algorithms and applications , 2022, Nature Computational Science.
[9] P. Georgiou,et al. Ultra‐thin ISFET‐based sensing systems , 2021, Electrochemical Science Advances.
[10] P. Blom,et al. Organic neuromorphic electronics for sensorimotor integration and learning in robotics , 2021, Science advances.
[11] S. Xia,et al. A review of the multiscale mechanics of silicon electrodes in high-capacity lithium-ion batteries , 2021, Journal of Physics D: Applied Physics.
[12] M. Spira,et al. Ultrastructural analysis of neuroimplant-parenchyma interfaces uncover remarkable neuroregeneration along-with barriers that limit the implant electrophysiological functions , 2021, bioRxiv.
[13] T. Trung,et al. Stretchable and Stable Electrolyte‐Gated Organic Electrochemical Transistor Synapse with a Nafion Membrane for Enhanced Synaptic Properties , 2021, Advanced Engineering Materials.
[14] D. Chi,et al. Wafer‐Scale 2D Hafnium Diselenide Based Memristor Crossbar Array for Energy‐Efficient Neural Network Hardware , 2021, Advanced materials.
[15] C. Masters,et al. The Amyloid-β Pathway in Alzheimer’s Disease , 2021, Molecular Psychiatry.
[16] J. Rivnay,et al. Organic electrochemical transistors in bioelectronic circuits. , 2021, Biosensors & bioelectronics.
[17] M. Berggren,et al. Low‐Power/High‐Gain Flexible Complementary Circuits Based on Printed Organic Electrochemical Transistors , 2021, Advanced Electronic Materials.
[18] Baotian Zhao,et al. Deep Brain Stimulation in Treatment-Resistant Depression: A Systematic Review and Meta-Analysis on Efficacy and Safety , 2021, Frontiers in Neuroscience.
[19] Anil Koklu,et al. Microfluidic Integrated Organic Electrochemical Transistor with a Nanoporous Membrane for Amyloid-β Detection , 2021, ACS nano.
[20] P. Blom,et al. An Iontronic Multiplexer Based on Spatiotemporal Dynamics of Multiterminal Organic Electrochemical Transistors , 2021, Advanced Functional Materials.
[21] Yimin A. Wu,et al. Synaptic devices based neuromorphic computing applications in artificial intelligence , 2021 .
[22] S. Ingebrandt,et al. PEDOT:PSS organic electrochemical transistors for electrical cell-substrate impedance sensing down to single cells. , 2021, Biosensors & bioelectronics.
[23] Martin Snejbjerg Jensen,et al. An Intracortical Implantable Brain-Computer Interface for Telemetric Real-Time Recording and Manipulation of Neuronal Circuits for Closed-Loop Intervention , 2021, Frontiers in Human Neuroscience.
[24] W S McCulloch,et al. A logical calculus of the ideas immanent in nervous activity , 1990, The Philosophy of Artificial Intelligence.
[25] V. K. Truong,et al. 3D Printable Electrically Conductive Hydrogel Scaffolds for Biomedical Applications: A Review , 2021, Polymers.
[26] Michael J. Hoffmann,et al. Hafnia-based Double Layer Ferroelectric Tunnel Junctions as Artificial Synapses for Neuromorphic Computing , 2020, ACS Applied Electronic Materials.
[27] Friedemann Zenke,et al. Brain-Inspired Learning on Neuromorphic Substrates , 2020, Proceedings of the IEEE.
[28] M. Berggren,et al. Flexible Printed Organic Electrochemical Transistors for the Detection of Uric Acid in Artificial Wound Exudate , 2020, Advanced Materials Interfaces.
[29] Gunuk Wang,et al. Emerging Memristive Artificial Synapses and Neurons for Energy‐Efficient Neuromorphic Computing , 2020, Advanced materials.
[30] David C. Martin,et al. Electrically conducting polymers for bio-interfacing electronics: From neural and cardiac interfaces to bone and artificial tissue biomaterials. , 2020, Biosensors & bioelectronics.
[31] Andrew B. Lehr,et al. Robust Trajectory Generation for Robotic Control on the Neuromorphic Research Chip Loihi , 2020, Frontiers in Neurorobotics.
[32] Jill Sakai,et al. Core Concept: How synaptic pruning shapes neural wiring during development and, possibly, in disease , 2020, Proceedings of the National Academy of Sciences.
[33] Armantas Melianas,et al. A biohybrid synapse with neurotransmitter-mediated plasticity , 2020, Nature Materials.
[34] Johannes Schemmel,et al. Surrogate gradients for analog neuromorphic computing , 2020, Proceedings of the National Academy of Sciences.
[35] Osvaldo Simeone,et al. Memristors—From In‐Memory Computing, Deep Learning Acceleration, and Spiking Neural Networks to the Future of Neuromorphic and Bio‐Inspired Computing , 2020, Adv. Intell. Syst..
[36] Michael Breakspear,et al. Reconfiguration of functional brain networks and metabolic cost converge during task performance , 2020, eLife.
[37] Zhenan Bao,et al. Morphing electronics enable neuromodulation in growing tissue , 2020, Nature Biotechnology.
[38] P. Rossini,et al. Characterization of multi-channel intraneural stimulation in transradial amputees , 2019, Scientific Reports.
[39] M. Berggren,et al. All-printed large-scale integrated circuits based on organic electrochemical transistors , 2019, Nature Communications.
[40] F. Greco,et al. Inkjet-printed PEDOT:PSS multi-electrode arrays for low-cost in vitro electrophysiology. , 2019, Lab on a chip.
[41] Hesham Mostafa,et al. Surrogate Gradient Learning in Spiking Neural Networks: Bringing the Power of Gradient-based optimization to spiking neural networks , 2019, IEEE Signal Processing Magazine.
[42] S. Micera,et al. Sensory feedback restoration in leg amputees improves walking speed, metabolic cost and phantom pain , 2019, Nature Medicine.
[43] Benoit Miramond,et al. Information Coding and Hardware Architecture of Spiking Neural Networks , 2019, 2019 22nd Euromicro Conference on Digital System Design (DSD).
[44] M. Antognazza,et al. High-Aspect-Ratio Semiconducting Polymer Pillars for 3D Cell Cultures , 2019, ACS applied materials & interfaces.
[45] Z. Kovács-Vajna,et al. Ion buffering and interface charge enable high performance electronics with organic electrochemical transistors , 2019, Nature Communications.
[46] Jiawei Zhang. Basic Neural Units of the Brain: Neurons, Synapses and Action Potential , 2019, 1906.01703.
[47] Assaf Shapira,et al. A Stretchable and Flexible Cardiac Tissue-Electronics Hybrid Enabling Multiple Drug Release, Sensing, and Stimulation. , 2019, Small.
[48] Mufang Li,et al. Wearable Fiber-Based Organic Electrochemical Transistors as a Platform for Highly Sensitive Dopamine Monitoring. , 2019, ACS applied materials & interfaces.
[49] I. Hsing,et al. Engineering organic electrochemical transistor (OECT) to be sensitive cell-based biosensor through tuning of channel area , 2019, Sensors and Actuators A: Physical.
[50] Z. Fekete,et al. A softening laminar electrode for recording single unit activity from the rat hippocampus , 2019, Scientific Reports.
[51] T. Bernaś,et al. Neuronal plasticity affects correlation between the size of dendritic spine and its postsynaptic density , 2019, Scientific Reports.
[52] H. Bergman,et al. Deep brain stimulation: current challenges and future directions , 2019, Nature Reviews Neurology.
[53] D. Mecerreyes,et al. 3D Scaffolds Based on Conductive Polymers for Biomedical Applications. , 2018, Biomacromolecules.
[54] Marco Crepaldi,et al. Quality-Energy Trade-off and Bio-Inspired Electronic Systems , 2018, 2018 IEEE International Conference on the Science of Electrical Engineering in Israel (ICSEE).
[55] Jianwei Hou,et al. Advances in developing novel therapeutic strategies for Alzheimer’s disease , 2018, Molecular Neurodegeneration.
[56] Ana G. Hernandez-Reynoso,et al. Thin Film Multi-Electrode Softening Cuffs for Selective Neuromodulation , 2018, Scientific Reports.
[57] Aswini Kanneganti,et al. Thin Film Multi-Electrode Softening Cuffs for Selective Neuromodulation , 2018, Scientific Reports.
[58] Aman Jantan,et al. State-of-the-art in artificial neural network applications: A survey , 2018, Heliyon.
[59] E. Eleftheriou,et al. A phase-change memory model for neuromorphic computing , 2018, Journal of Applied Physics.
[60] Young Jin Jo,et al. Gelatin Hydrogel-Based Organic Electrochemical Transistors and Their Integrated Logic Circuits. , 2018, ACS applied materials & interfaces.
[61] Yang Yi,et al. The Roadmap to Realize Memristive Three-Dimensional Neuromorphic Computing System , 2018, Advances in Memristor Neural Networks - Modeling and Applications.
[62] S. Iannotta,et al. Integration of organic electrochemical transistors and immuno-affinity membranes for label-free detection of interleukin-6 in the physiological concentration range through antibody-antigen recognition. , 2018, Journal of materials chemistry. B.
[63] Travis L. Massey,et al. An actuated neural probe architecture for reducing gliosis-induced recording degradation , 2018, bioRxiv.
[64] Alexander M Seifalian,et al. Conductive Polymers: Opportunities and Challenges in Biomedical Applications. , 2018, Chemical reviews.
[65] Assaf Shapira,et al. Multifunctional degradable electronic scaffolds for cardiac tissue engineering , 2018, Journal of controlled release : official journal of the Controlled Release Society.
[66] Hiroyuki Matsui,et al. Printed 5-V organic operational amplifiers for various signal processing , 2018, Scientific Reports.
[67] Andrew J. Shoffstall,et al. Bioinspired materials and systems for neural interfacing , 2018, Current Opinion in Biomedical Engineering.
[68] Timothée Masquelier,et al. Deep Learning in Spiking Neural Networks , 2018, Neural Networks.
[69] Diego Ghezzi,et al. Design and validation of a foldable and photovoltaic wide-field epiretinal prosthesis , 2018, Nature Communications.
[70] Sydney S. Cash,et al. Development and Translation of PEDOT:PSS Microelectrodes for Intraoperative Monitoring , 2018 .
[71] X. Crispin,et al. Complementary Logic Circuits Based on High‐Performance n‐Type Organic Electrochemical Transistors , 2018, Advanced materials.
[72] Göran Gustafsson,et al. Screen printed digital circuits based on vertical organic electrochemical transistors , 2017 .
[73] H. Ohno,et al. Spintronics based random access memory: a review , 2017 .
[74] K. Ludwig,et al. Glial responses to implanted electrodes in the brain , 2017, Nature Biomedical Engineering.
[75] Fabio Biscarini,et al. Label-free detection of interleukin-6 using electrolyte gated organic field effect transistors. , 2017, Biointerphases.
[76] Takao Someya,et al. Transparent, conformable, active multielectrode array using organic electrochemical transistors , 2017, Proceedings of the National Academy of Sciences.
[77] Andrew Zalesky,et al. Reconfiguration of Brain Network Architectures between Resting-State and Complexity-Dependent Cognitive Reasoning , 2017, The Journal of Neuroscience.
[78] Jessica Ka-Yan Law,et al. PEDOT:PSS organic electrochemical transistor arrays for extracellular electrophysiological sensing of cardiac cells. , 2017, Biosensors & bioelectronics.
[79] Jan M. Rabaey,et al. High-Dimensional Computing as a Nanoscalable Paradigm , 2017, IEEE Transactions on Circuits and Systems I: Regular Papers.
[80] H. Mulaosmanovic,et al. Novel ferroelectric FET based synapse for neuromorphic systems , 2017, 2017 Symposium on VLSI Technology.
[81] Sophie Denève,et al. The Brain as an Efficient and Robust Adaptive Learner , 2017, Neuron.
[82] George G. Malliaras,et al. Neuromorphic device architectures with global connectivity through electrolyte gating , 2017, Nature Communications.
[83] Khalil B. Ramadi,et al. Characterization of Mechanically Matched Hydrogel Coatings to Improve the Biocompatibility of Neural Implants , 2017, Scientific Reports.
[84] H.-S. Philip Wong,et al. Face classification using electronic synapses , 2017, Nature Communications.
[85] Kristian Franze,et al. The soft mechanical signature of glial scars in the central nervous system , 2017, Nature Communications.
[86] Somnath Paul,et al. Event-Driven Random Back-Propagation: Enabling Neuromorphic Deep Learning Machines , 2016, Front. Neurosci..
[87] Tao Zhou,et al. Stable long-term chronic brain mapping at the single-neuron level , 2016, Nature Methods.
[88] Assaf Shapira,et al. Engineered hybrid cardiac patches with multifunctional electronics for online monitoring and regulation of tissue function , 2016, Nature materials.
[89] D. Attwell,et al. Energy-Efficient Information Transfer by Visual Pathway Synapses , 2015, Current Biology.
[90] B. Stadlober,et al. All Screen-Printed Logic Gates Based on Organic Electrochemical Transistors , 2015, IEEE Transactions on Electron Devices.
[91] I. Johnson. Age-related neurodegenerative disease research needs aging models , 2015, Front. Aging Neurosci..
[92] E. Kandel,et al. Structural Components of Synaptic Plasticity and Memory Consolidation. , 2015, Cold Spring Harbor perspectives in biology.
[93] Giacomo Indiveri,et al. Memory and Information Processing in Neuromorphic Systems , 2015, Proceedings of the IEEE.
[94] E. Kuhl,et al. Mechanical properties of gray and white matter brain tissue by indentation. , 2015, Journal of the mechanical behavior of biomedical materials.
[95] Marko Hinkkanen,et al. Observer-Based State-Space Current Controller for a Grid Converter Equipped With an LCL Filter: Analytical Method for Direct Discrete-Time Design , 2015, IEEE Transactions on Industry Applications.
[96] L. Fadiga,et al. PEDOT-CNT-Coated Low-Impedance, Ultra-Flexible, and Brain-Conformable Micro-ECoG Arrays , 2015, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[97] Jing Guo,et al. Rigid and Flexible Organic Electrochemical Transistor Arrays for Monitoring Action Potentials from Electrogenic Cells , 2015, Advanced healthcare materials.
[98] Christoph Weder,et al. Progress towards biocompatible intracortical microelectrodes for neural interfacing applications , 2015, Journal of neural engineering.
[99] G. Buzsáki,et al. NeuroGrid: recording action potentials from the surface of the brain , 2014, Nature Neuroscience.
[100] Andrew S. Cassidy,et al. A million spiking-neuron integrated circuit with a scalable communication network and interface , 2014, Science.
[101] M. Kaltenbrunner,et al. Mechanically Adaptive Organic Transistors for Implantable Electronics , 2014, Advanced materials.
[102] Bradley Greger,et al. Acute human brain responses to intracortical microelectrode arrays: challenges and future prospects , 2014, Front. Neuroeng..
[103] Ales Stuchlik,et al. Behavioral Neuroscience Mini Review Article Dynamic Learning and Memory, Synaptic Plasticity and Neurogenesis: an Update , 2022 .
[104] D. Turnbull,et al. Ageing and Parkinson's disease: Why is advancing age the biggest risk factor?☆ , 2014, Ageing Research Reviews.
[105] George G. Malliaras,et al. The Rise of Organic Bioelectronics , 2014 .
[106] Tian-Ming Fu,et al. Sub-10-nm intracellular bioelectronic probes from nanowire–nanotube heterostructures , 2014, Proceedings of the National Academy of Sciences.
[107] Charles M. Lieber,et al. Free-standing kinked nanowire transistor probes for targeted intracellular recording in three dimensions , 2013, Nature nanotechnology.
[108] Jonathan Rivnay,et al. Organic Electrochemical Transistors with Maximum Transconductance at Zero Gate Bias , 2013, Advanced materials.
[109] Michela Chiappalone,et al. A transparent organic transistor structure for bidirectional stimulation and recording of primary neurons. , 2013, Nature materials.
[110] J. Vitek,et al. History, applications, and mechanisms of deep brain stimulation. , 2013, JAMA neurology.
[111] M. Spira,et al. Multi-electrode array technologies for neuroscience and cardiology. , 2013, Nature nanotechnology.
[112] Dominique Debanne,et al. What are the mechanisms for analogue and digital signalling in the brain? , 2012, Nature Reviews Neuroscience.
[113] George G. Malliaras,et al. Measurement of Barrier Tissue Integrity with an Organic Electrochemical Transistor , 2012, Advanced materials.
[114] Charles M. Lieber,et al. Macroporous nanowire nanoelectronic scaffolds for synthetic tissues. , 2012, Nature materials.
[115] G. Kempermann. New neurons for 'survival of the fittest' , 2012, Nature Reviews Neuroscience.
[116] Bozhi Tian,et al. Intracellular recordings of action potentials by an extracellular nanoscale field-effect transistor , 2011, Nature nanotechnology.
[117] Gert Cauwenberghs,et al. Neuromorphic Silicon Neuron Circuits , 2011, Front. Neurosci.
[118] Olaf Sporns,et al. THE HUMAN CONNECTOME: A COMPLEX NETWORK , 2011, Schizophrenia Research.
[119] R. Mayeux,et al. Epidemiology of Alzheimer disease , 2011, Nature Reviews Neurology.
[120] Giuliano Iurilli,et al. Flexible, all-polymer microelectrode arrays for the capture of cardiac and neuronal signals. , 2011, Biomaterials.
[121] Charles M. Lieber,et al. Three-Dimensional, Flexible Nanoscale Field-Effect Transistors as Localized Bioprobes , 2010, Science.
[122] Adam J Engler,et al. Intrinsic extracellular matrix properties regulate stem cell differentiation. , 2010, Journal of biomechanics.
[123] Yusuf Leblebici,et al. Electrical modeling of the cell-electrode interface for recording neural activity from high-density microelectrode arrays , 2009, Neurocomputing.
[124] A Schnitzler,et al. Review: Deep brain stimulation in Parkinson’s disease , 2009, Therapeutic advances in neurological disorders.
[125] Chun-Hyung Cho,et al. Characterization of Young's modulus of silicon versus temperature using a ``beam deflection'' method with a four-point bending fixture , 2009 .
[126] Catherine Dehollain,et al. Numerical analysis of temperature elevation in the head due to power dissipation in a cortical implant , 2008, 2008 30th Annual International Conference of the IEEE Engineering in Medicine and Biology Society.
[127] T. Branco,et al. Local Dendritic Activity Sets Release Probability at Hippocampal Synapses , 2008, Neuron.
[128] Robert Forchheimer,et al. Inkjet printed electrochemical organic electronics , 2008 .
[129] Igor A. Lavrov,et al. Flexible parylene-based multielectrode array technology for high-density neural stimulation and recording , 2008 .
[130] George G. Malliaras,et al. Steady‐State and Transient Behavior of Organic Electrochemical Transistors , 2007 .
[131] Karen L. Smith,et al. Effects of insertion conditions on tissue strain and vascular damage during neuroprosthetic device insertion , 2006, Journal of neural engineering.
[132] A. Lambacher,et al. High-resolution multitransistor array recording of electrical field potentials in cultured brain slices. , 2006, Journal of neurophysiology.
[133] D. Attwell,et al. Neuroenergetics and the kinetic design of excitatory synapses , 2005, Nature Reviews Neuroscience.
[134] David C. Martin,et al. Neuronal cell loss accompanies the brain tissue response to chronically implanted silicon microelectrode arrays , 2005, Experimental Neurology.
[135] Ursula van Rienen,et al. Choosing electrodes for deep brain stimulation experiments–electrochemical considerations , 2005, Journal of Neuroscience Methods.
[136] Shih-Chii Liu,et al. Temporal coding in a silicon network of integrate-and-fire neurons , 2004, IEEE Transactions on Neural Networks.
[137] David C. Martin,et al. Electrochemical deposition and characterization of poly(3,4-ethylenedioxythiophene) on neural microelectrode arrays , 2003 .
[138] Weis,et al. Neuron adhesion on a silicon chip probed by an array of field-effect transistors. , 1996, Physical review letters.
[139] D. Johnston,et al. Changes in paired-pulse facilitation suggest presynaptic involvement in long-term potentiation , 1994, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[140] Weis,et al. Neuron transistor: Electrical transfer function measured by the patch-clamp technique. , 1993, Physical review letters.
[141] R. Silver,et al. Estimated conductance of glutamate receptor channels activated during EPSCs at the cerebellar mossy fiber-granule cell synapse , 1993, Neuron.
[142] P. Fromherz,et al. A neuron-silicon junction: a Retzius cell of the leech on an insulated-gate field-effect transistor. , 1991, Science.
[143] S. Dreyfus. The computational solution of optimal control problems with time lag , 1973 .
[144] D. Robinson,et al. The electrical properties of metal microelectrodes , 1968 .
[145] F ROSENBLATT,et al. The perceptron: a probabilistic model for information storage and organization in the brain. , 1958, Psychological review.
[146] Tal Dvir,et al. Tissue–electronics interfaces: from implantable devices to engineered tissues , 2018 .
[147] R. Mosley,et al. Therapeutic strategies in neurodegenerative diseases , 2017 .
[148] Srikanth Vasudevan,et al. Thiol-ene/acrylate substrates for softening intracortical electrodes. , 2014, Journal of biomedical materials research. Part B, Applied biomaterials.
[149] R. Malenka,et al. Synaptic Plasticity: Multiple Forms, Functions, and Mechanisms , 2008, Neuropsychopharmacology.
[150] Stephen J. Rebscher,et al. Considerations for design of future cochlear implant electrode arrays: electrode array stiffness, size, and depth of insertion. , 2008, Journal of rehabilitation research and development.
[151] Francisco del Monte,et al. Multiwall carbon nanotube scaffolds for tissue engineering purposes. , 2008, Biomaterials.
[152] Laurenz Wiskott,et al. A functional hypothesis for adult hippocampal neurogenesis: Avoidance of catastrophic interference in the dentate gyrus , 2006, Hippocampus.
[153] M. Vila,et al. Series Introduction: Neurodegeneration: What is it and where are we? , 2003 .
[154] B. Alberts,et al. Ion Channels and the Electrical Properties of Membranes , 2002 .
[155] A. van Schaik. Building blocks for electronic spiking neural networks. , 2001, Neural networks : the official journal of the International Neural Network Society.
[156] B Sakmann,et al. Patch clamp techniques for studying ionic channels in excitable membranes. , 1984, Annual review of physiology.