Wang Xiumei, Yang Huihuang, Li Enlong, Cao Chunbin, Zheng Wen, Chen Huipeng, Li Wenwu
School of Science, Anhui Agricultural University, Hefei, 230036, China.
Shanghai Frontiers Science Research Base of Intelligent Optoelectronics and Perception, Institute of Optoelectronics, Department of Materials Science, Fudan University, Shanghai, 200433, China.
Small. 2023 May;19(18):e2205395. doi: 10.1002/smll.202205395. Epub 2023 Feb 7.
Stretchable synaptic transistors, a core technology in neuromorphic electronics, have functions and structures similar to biological synapses and can concurrently transmit signals and learn. Stretchable synaptic transistors are usually soft and stretchy and can accommodate various mechanical deformations, which presents significant prospects in soft machines, electronic skin, human-brain interfaces, and wearable electronics. Considerable efforts have been devoted to developing stretchable synaptic transistors to implement electronic device neuromorphic functions, and remarkable advances have been achieved. Here, this review introduces the basic concept of artificial synaptic transistors and summarizes the recent progress in device structures, functional-layer materials, and fabrication processes. Classical stretchable synaptic transistors, including electric double-layer synaptic transistors, electrochemical synaptic transistors, and optoelectronic synaptic transistors, as well as the applications of stretchable synaptic transistors in light-sensory systems, tactile-sensory systems, and multisensory artificial-nerves systems, are discussed. Finally, the current challenges and potential directions of stretchable synaptic transistors are analyzed. This review presents a detailed introduction to the recent progress in stretchable synaptic transistors from basic concept to applications, providing a reference for the development of stretchable synaptic transistors in the future.
可拉伸突触晶体管是神经形态电子学中的一项核心技术,具有与生物突触相似的功能和结构,能够同时传输信号并进行学习。可拉伸突触晶体管通常柔软且有弹性,能适应各种机械变形,这在软机器、电子皮肤、人脑接口和可穿戴电子设备等领域展现出巨大的前景。人们已投入大量精力来开发可拉伸突触晶体管以实现电子设备的神经形态功能,并取得了显著进展。在此,本综述介绍了人工突触晶体管的基本概念,并总结了器件结构、功能层材料和制造工艺方面的最新进展。讨论了经典的可拉伸突触晶体管,包括双电层突触晶体管、电化学突触晶体管和光电突触晶体管,以及可拉伸突触晶体管在光感系统、触感系统和多感官人工神经 系统中的应用。最后,分析了可拉伸突触晶体管当前面临的挑战和潜在发展方向。本综述详细介绍了可拉伸突触晶体管从基本概念到应用的最新进展,为未来可拉伸突触晶体管的发展提供参考。