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Updated: Jan 15, 2026

Assembly and Characterization of Biomolecular Memristors Consisting of Ion Channel-doped Lipid Membranes
Published on: March 9, 2019
Volatile threshold switching and neural dynamics emulation in a chitosan-ZnO memristor for neuromorphic computing
Yanmei Sun1,2, Rui Liu1, Zekai Zhang1
1School of Electronic Engineering, Heilongjiang University, Harbin 150080, China.
None:
Neuromorphic computing demands energy-efficient and biologically plausible devices to emulate neural dynamics and sensory processing. This study explores the development and application of a chitosan-doped ZnO memristor for neuromorphic computing, focusing on its volatile threshold switching behavior and bio-inspired sensory applications. The device exhibits excellent memristive performance, with a high switching ratio (∼105), stable endurance (>104 cycles), and rapid switching speeds (turn-on/turn-off times of ∼23/21 µs). Symmetric threshold voltages (±2 V) and low resistance variability highlight its reliability. Integrated into an oscillatory neuron circuit (R-C configuration), the memristor emulates spiking dynamics, demonstrating tunable frequency and energy efficiency (∼832 nJ/spike). Furthermore, the circuit successfully replicates biological motion detection and sound localization by processing spatiotemporal input differences, mimicking direction-selective ganglion cells and medial superior olive neurons. These results validate the memristor's potential for bio-inspired sensory systems, offering a scalable, energy-efficient platform for neuromorphic computing and artificial perception.
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