State Key Laboratory of Physical Chemistry of Solid Surfaces, College of Chemistry and Chemical Engineering, Xiamen University, Xiamen 361005, China.
The Institute of Flexible Electronics (IFE, Future Technologies), Xiamen University, Xiamen 361005, China.
J Phys Chem Lett. 2023 Mar 23;14(11):2891-2900. doi: 10.1021/acs.jpclett.2c03930. Epub 2023 Mar 16.
The human brain completes intelligent behaviors such as the generation, transmission, and storage of neural signals by regulating the ionic conductivity of ion channels in neuron cells, which provides new inspiration for the development of ion-based brain-like intelligence. Against the backdrop of the gradual maturity of neuroscience, computer science, and micronano materials science, bioinspired nanofluidic iontronics, as an emerging interdisciplinary subject that focuses on the regulation of ionic conductivity of nanofluidic systems to realize brain-like functionalities, has attracted the attention of many researchers. This Perspective provides brief background information and the state-of-the-art progress of nanofluidic intelligent systems. Two main categories are included: nanofluidic transistors and nanofluidic memristors. The prospects of nanofluidic iontronics' interdisciplinary progress in future artificial intelligence fields such as neuromorphic computing or brain-computer interfaces are discussed. This Perspective aims to give readers a clear understanding of the concepts and prospects of this emerging interdisciplinary field.
人类大脑通过调节神经元细胞中离子通道的离子电导率来完成神经信号的产生、传输和存储等智能行为,这为基于离子的类脑智能的发展提供了新的启示。在神经科学、计算机科学和微纳材料科学逐渐成熟的背景下,生物启发型纳流离子电子学作为一个新兴的交叉学科领域,专注于调节纳流系统的离子电导率以实现类脑功能,引起了众多研究人员的关注。本观点提供了纳流智能系统的简要背景信息和最新进展。包括纳流晶体管和纳流忆阻器两个主要类别。讨论了纳流离子电子学在神经形态计算或脑机接口等未来人工智能领域的交叉进展前景。本观点旨在使读者清楚地了解这一新兴交叉学科领域的概念和前景。