Resistive Switching of Spinel Li4Ti5O12 Lithium-Ion Battery Material for Neuromorphic Computing

神经形态工程学 尖晶石 锂(药物) 材料科学 光电子学 离子 电池(电) 记忆电阻器 电阻式触摸屏 纳米技术 计算机科学 电气工程 物理 工程类 操作系统 功率(物理) 人工智能 心理学 冶金 精神科 人工神经网络 量子力学
作者
Bhagath Sreenarayanan,Chi‐Hsin Huang,Ryōsuke Shimizu,Steven Suwito,Shen Wang,Yu Zheng,Chia‐Yu Chang,Bing Han,Biswajit Sahoo,Yong Zhang,Dhivya Pushpa Meganathan,Kenji Nomura,Bing−Joe Hwang,Wei‐Nien Su,Zeinab Jahed,Minghao Zhang,Eric E. Fullerton,Ying Shirley Meng
出处
期刊: [American Chemical Society]
卷期号:3 (8): 2624-2637 被引量:1
标识
DOI:10.1021/acsaenm.5c00459
摘要

The rapid rise of AI has exposed significant limitations in conventional Von Neumann computing architecture, particularly in regard to speed and energy efficiency. To address these challenges, researchers are exploring a brain-inspired neuromorphic architecture that mimics biological neural networks, enabling massive parallel processing with reduced power consumption for complex AI computational demands. Recent interest has focused on utilizing battery electrodes and solid electrolyte materials for their resistive switching properties in developing a neuromorphic architecture. These properties are precisely tuned through local- and bulk-level chemical composition modifications via voltage bias stimuli. In this study, we demonstrate fabricating a three-terminal lithium-ion electrochemical transistor based on lithium titanium oxide (Li4Ti5O12), a popular lithium-ion battery anode material. We deposited and characterized LTO thin films using RF sputtering, demonstrating a 6 orders of magnitude increase in electronic conductivity upon lithiation, with conductivity plateauing after 20% lithiation. Density functional theory calculations revealed transformation from the insulating to conducting state, supported by experimental characterization through X-Ray Photoelectron Spectroscopy (XPS) and Direct Current (DC) polarization analyses. The fabricated transistor consisted of LTO as the channel layer, gold as source/drain terminals, lithium phosphorus oxynitride (LiPON) as the lithium-ion conductor, and copper as the gate terminal. The device exhibited clear hysteresis in transfer characteristics due to lithium insertion/extraction processes. Long-term potentiation (LTP) and long-term depression (LTD) measurements showed an asymmetric ratio of 1.425 and maximum/minimum conductance ratio of 7.83. When implemented in a deep neural network (DNN) for MNIST handwritten digit recognition, the device achieved 92.03% accuracy over 20 training epochs. Detailed transport mechanism analysis revealed the crucial role of oxygen vacancies and interface effects in device operation. Our preliminary findings establish LTO-based lithium-ion electrochemical transistors as promising candidates for energy-efficient neuromorphic computing applications, offering potential solutions to traditional Von Neumann architecture limitations.
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