Shanghai Key Laboratory of Anesthesiology and Brain Functional Modulation, Translational Research Institute of Brain and Brain-Like Intelligence, Shanghai Fourth People's Hospital, Tongji University, Shanghai, 200434, P. R. China.
Interdisciplinary Materials Research Center, School of Materials Science and Engineering, Tongji University, Shanghai, 201804, P. R. China.
Adv Mater. 2023 Sep;35(39):e2300329. doi: 10.1002/adma.202300329. Epub 2023 Aug 2.
Living organisms have a very mysterious and powerful sensory computing system based on ion activity. Interestingly, studies on iontronic devices in the past few years have proposed a promising platform for simulating the sensing and computing functions of living organisms, because: 1) iontronic devices can generate, store, and transmit a variety of signals by adjusting the concentration and spatiotemporal distribution of ions, which analogs to how the brain performs intelligent functions by alternating ion flux and polarization; 2) through ionic-electronic coupling, iontronic devices can bridge the biosystem with electronics and offer profound implications for soft electronics; 3) with the diversity of ions, iontronic devices can be designed to recognize specific ions or molecules by customizing the charge selectivity, and the ionic conductivity and capacitance can be adjusted to respond to external stimuli for a variety of sensing schemes, which can be more difficult for electron-based devices. This review provides a comprehensive overview of emerging neuromorphic sensory computing by iontronic devices, highlighting representative concepts of both low-level and high-level sensory computing and introducing important material and device breakthroughs. Moreover, iontronic devices as a means of neuromorphic sensing and computing are discussed regarding the pending challenges and future directions.
生物体具有基于离子活动的非常神秘和强大的感官计算系统。有趣的是,过去几年中对离子电子器件的研究提出了一个有前途的平台,用于模拟生物体的传感和计算功能,因为:1)离子电子器件可以通过调节离子的浓度和时空分布来产生、存储和传输各种信号,这类似于大脑如何通过交替离子通量和极化来执行智能功能;2)通过离子-电子耦合,离子电子器件可以将生物系统与电子系统连接起来,并为软电子学提供深刻的启示;3)通过离子的多样性,离子电子器件可以通过定制电荷选择性来设计用于识别特定离子或分子,并且可以调整离子电导率和电容以响应各种传感方案的外部刺激,这对于基于电子的设备来说可能更加困难。本综述全面介绍了新兴的基于离子电子器件的神经形态感官计算,突出了低水平和高水平感官计算的代表性概念,并介绍了重要的材料和器件突破。此外,还讨论了离子电子器件作为神经形态传感和计算的一种手段,针对待解决的挑战和未来方向。