School of Electrical and Electronic Engineering, Yonsei University, Seoul 03722, Republic of Korea.
ACS Appl Mater Interfaces. 2021 Jul 28;13(29):34597-34604. doi: 10.1021/acsami.1c07073. Epub 2021 Jul 19.
As constructing hardware technology is widely regarded as an important step toward realizing brain-like computers and artificial intelligence systems, the development of artificial synaptic electronics that can simulate biological synaptic functions is an emerging research field. Among the various types of artificial synapses, synaptic transistors using an electrolyte as the gate electrode have been implemented as the high capacitance of the electrolyte increases the driving current and lowers operating voltages. Here, transistors using maltose-ascorbic acid as the proton-conducting electrolyte are proposed. A novel electrolyte composed of maltose and ascorbic acid, both of which are biocompatible, enables the migration of protons. This allows the channel conductance of the transistors to be modulated with the gate input pulse voltage, and fundamental synaptic functions including excitatory postsynaptic current, paired-pulse facilitation, long-term potentiation, and long-term depression can be successfully emulated. Furthermore, the maltose-ascorbic acid electrolyte (MAE)-gated synaptic transistors exhibit high mechanical endurance, with near-linear conductivity modulation and repeatability after 1000 bending cycles under a curvature radius of 5 mm. Benefitting from its excellent biodegradability and biocompatibility, the proposed MAE has potential applications in environmentally friendly, economical, and high-performance neuromorphic electronics, which can be further applied to dermal electronics and implantable electronics in the future.
由于构建硬件技术被广泛认为是实现类脑计算机和人工智能系统的重要步骤,因此开发能够模拟生物突触功能的人工突触电子学是一个新兴的研究领域。在各种类型的人工突触中,使用电解质作为栅电极的突触晶体管已经被实现,因为电解质的高电容增加了驱动电流并降低了工作电压。在这里,提出了使用麦芽糖-抗坏血酸作为质子传导电解质的晶体管。由麦芽糖和抗坏血酸组成的新型电解质允许质子迁移。这使得晶体管的沟道电导可以通过栅极输入脉冲电压进行调制,并且可以成功模拟包括兴奋性突触后电流、成对脉冲易化、长时程增强和长时程抑制在内的基本突触功能。此外,麦芽糖-抗坏血酸电解质(MAE)门控突触晶体管表现出高机械耐久性,在曲率半径为 5 毫米的情况下,经过 1000 次弯曲循环后,其导电性调制接近线性且具有重复性。得益于其出色的可生物降解性和生物相容性,所提出的 MAE 在环保、经济和高性能神经形态电子学中具有潜在的应用前景,未来可进一步应用于皮肤电子学和可植入电子学。