posted on 2025-12-03, 17:15authored byLin Zhu, Song Sun, Li-Ling Fu, Chu-Yi Zhang, Wei-Min Li, Di Wu, Yan-Qiang Cao, Ai-Dong Li
Ultrathin bilayer biomolecular memristors based on molecular
layer
deposition (MLD) are fabricated to achieve high-performance neuromorphic
computing. The device with a TiN/Ti-cysteine/Al-cysteine/Pt structure
exhibits reproducible nonvolatile bipolar resistive switching with
an on/off ratio (>10<sup>2</sup>), excellent retention (>10<sup>5</sup> s), and low operating voltages (−1.28 V/+2.10 V).
Improved
uniformity and multistate controllability stem from a charge trapping/detrapping-assisted
conductive filament mechanism, while the Al-Cys layer enhances resistive
switching and retention characteristics, the Ti-Cys layer stabilizes
and regulates conductive filament formation. Critically, the memristor
emulates key synaptic functionalities, including long-term potentiation/depression
(LTP/LTD), paired-pulse facilitation/depression (PPF/PPD), and spike-rate-dependent
plasticity (SRDP). When deployed in a neural network for MNIST handwritten
digit recognition, it achieves 93.7% accuracy. This work resolves
limitations of single-layer biomemristors by synergistic bilayer design,
advancing biohybrid electronics for energy-efficient neuromorphic
hardware.