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可调谐反双极垂直双层有机电化学晶体管实现神经形态视网膜通路。

Tunable anti-ambipolar vertical bilayer organic electrochemical transistor enable neuromorphic retinal pathway.

机构信息

Department of Biomedical Engineering, Northwestern University, Evanston, IL, USA.

School of Electrical and Electronic Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore, 639798, Singapore.

出版信息

Nat Commun. 2024 Jul 26;15(1):6309. doi: 10.1038/s41467-024-50496-6.

Abstract

Increasing demand for bio-interfaced human-machine interfaces propels the development of organic neuromorphic electronics with small form factors leveraging both ionic and electronic processes. Ion-based organic electrochemical transistors (OECTs) showing anti-ambipolarity (OFF-ON-OFF states) reduce the complexity and size of bio-realistic Hodgkin-Huxley(HH) spiking circuits and logic circuits. However, limited stable anti-ambipolar organic materials prevent the design of integrated, tunable, and multifunctional neuromorphic and logic-based systems. In this work, a general approach for tuning anti-ambipolar characteristics is presented through assembly of a p-n bilayer in a vertical OECT (vOECT) architecture. The vertical OECT design reduces device footprint, while the bilayer material tuning controls the anti-ambipolarity characteristics, allowing control of the device's on and off threshold voltages, and peak position, while reducing size thereby enabling tunable threshold spiking neurons and logic gates. Combining these components, a mimic of the retinal pathway reproducing the wavelength and light intensity encoding of horizontal cells to spiking retinal ganglion cells is demonstrated. This work enables further incorporation of conformable and adaptive OECT electronics into biointegrated devices featuring sensory coding through parallel processing for diverse artificial intelligence and computing applications.

摘要

对生物接口人机界面的需求不断增加,推动了具有小外形因子的有机神经形态电子学的发展,利用离子和电子过程。基于离子的有机电化学晶体管 (OECT) 表现出反双极性 (OFF-ON-OFF 状态),可降低生物逼真 Hodgkin-Huxley (HH) 尖峰电路和逻辑电路的复杂性和尺寸。然而,有限的稳定反双极性有机材料阻止了集成、可调谐和多功能神经形态和基于逻辑的系统的设计。在这项工作中,通过在垂直 OECT (vOECT) 架构中组装 p-n 双层,提出了一种调整反双极性特性的通用方法。垂直 OECT 设计减小了器件占地面积,而双层材料调整控制了反双极性特性,允许控制器件的导通和关断阈值电压以及峰值位置,同时减小尺寸,从而实现可调阈值尖峰神经元和逻辑门。将这些组件结合起来,可以模拟视网膜通路,重现水平细胞对视网膜神经节细胞的波长和光强编码。这项工作使可适应和自适应 OECT 电子学能够进一步集成到生物集成设备中,通过并行处理进行传感编码,用于各种人工智能和计算应用。

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