An Acoustoelectric Approach to Neuron Function
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[1] D. Hunger,et al. Quantitative Determination of the Complex Polarizability of Individual Nanoparticles by Scanning Cavity Microscopy , 2022, ACS Photonics.
[2] Jennifer L. K. McCullough,et al. Acoustic differentiation and classification of wild belugas and narwhals using echolocation clicks , 2021, Scientific Reports.
[3] G. Curio,et al. Noninvasive neuromagnetic single-trial analysis of human neocortical population spikes , 2021, Proceedings of the National Academy of Sciences.
[4] M. Peyrard. How is information transmitted in a nerve? , 2020, Journal of Biological Physics.
[5] Benjamin Drukarch,et al. Thinking About the Nerve Impulse: The Prospects for the Development of a Comprehensive Account of Nerve Impulse Propagation , 2019, Front. Cell. Neurosci..
[6] M. Lozada-Hidalgo,et al. Complete steric exclusion of ions and proton transport through confined monolayer water , 2018, Science.
[7] K. Novoselov,et al. Anomalously low dielectric constant of confined water , 2018, Science.
[8] N. J. Engelsen,et al. Elastic strain engineering for ultralow mechanical dissipation , 2018, Science.
[9] D. Fox. The Brain, Reimagined. , 2018, Scientific American.
[10] K. Tamm,et al. Electromechanical coupling of waves in nerve fibres , 2018, Biomechanics and Modeling in Mechanobiology.
[11] Shamit Shrivastava,et al. Protons at the speed of sound: Predicting specific biological signaling from physics , 2016, Scientific Reports.
[12] Ronald L. Walsworth,et al. Optical magnetic detection of single-neuron action potentials using quantum defects in diamond , 2016, Proceedings of the National Academy of Sciences.
[13] J. Chan,et al. Remodeling myelination: implications for mechanisms of neural plasticity , 2016, Nature Neuroscience.
[14] R. Douglas Fields,et al. A new mechanism of nervous system plasticity: activity-dependent myelination , 2015, Nature Reviews Neuroscience.
[15] J. Salzer. Schwann cell myelination. , 2015, Cold Spring Harbor perspectives in biology.
[16] R. Laughlin. Critical waves and the length problem of biology , 2015, Proceedings of the National Academy of Sciences.
[17] Thomas Faust,et al. Coherent control of a classical nanomechanical two-level system , 2012, Nature Physics.
[18] A. Wixforth,et al. Propagation of 2D pressure pulses in lipid monolayers and its possible implications for biology. , 2012, Physical review letters.
[19] M Zamir,et al. Mechanical events within the arterial wall under the forces of pulsatile flow: a review. , 2011, Journal of the mechanical behavior of biomedical materials.
[20] Thomas Faust,et al. Damping of nanomechanical resonators. , 2010, Physical review letters.
[21] Eva M. Weig,et al. Universal transduction scheme for nanomechanical systems based on dielectric forces , 2009, Nature.
[22] Scott S. Verbridge,et al. High quality factor resonance at room temperature with nanostrings under high tensile stress , 2006 .
[23] M. Volgushev,et al. Unique features of action potential initiation in cortical neurons , 2006, Nature.
[24] Peter J. Brophy,et al. Mechanisms of axon ensheathment and myelin growth , 2005, Nature Reviews Neuroscience.
[25] T. Heimburg,et al. On soliton propagation in biomembranes and nerves. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[26] N. Fertig,et al. Activity of single ion channel proteins detected with a planar microstructure , 2002 .
[27] Nace L. Golding,et al. Compartmental Models Simulating a Dichotomy of Action Potential Backpropagation in Ca1 Pyramidal Neuron Dendrites , 2001, Journal of neurophysiology.
[28] A. Wixforth,et al. Acoustically Driven Storage of Light in a Quantum Well , 1997, cond-mat/9704029.
[29] Miller,et al. Relation between electroabsorption in bulk semiconductors and in quantum wells: The quantum-confined Franz-Keldysh effect. , 1986, Physical review. B, Condensed matter.
[30] John W. Miles,et al. The Korteweg-de Vries equation: a historical essay , 1981, Journal of Fluid Mechanics.
[31] B. C. Hill,et al. Laser interferometer measurement of changes in crayfish axon diameter concurrent with action potential. , 1977, Science.
[32] S. Rezende,et al. Radiation damping in magnetic resonance. II. Continuous-wave antiferromagnetic-resonance experiments , 1974 .
[33] Hermann von Helmholtz. Note sur la vitesse de propagation de l’agent nerveux dans les nerfs rachidiens , 2021, Hermann von Helmholtz.
[34] E. Wilke. Das Problem der Reizleitung im Nerven vom Standpunkte der Wellenlehre aus betrachtet , 2005, Pflüger's Archiv für die gesamte Physiologie des Menschen und der Tiere.
[35] A. Hodgkin,et al. A quantitative description of membrane current and its application to conduction and excitation in nerve , 1990, Bulletin of mathematical biology.
[36] I. Tasaki. The excitatory and recovery processes in the nerve fibre as modified by temperature changes , 1949 .