Ferroelectrically modulated ion dynamics in Li+ electrolyte-gated transistors for neuromorphic computing

Author:

Jin Minho1ORCID,Lee Haeyeon2ORCID,Lee Jae Hak13,Han Daeyoung4ORCID,Im Changik5ORCID,Kim Jiyeon6ORCID,Jeon Moongu4ORCID,Lee Eungkyu7ORCID,Kim Youn Sang1268ORCID

Affiliation:

1. Program in Nano Science and Technology, Graduate School of Convergence Science and Technology, Seoul National University 1 , 1 Gwanak-ro, Gwanak-gu, Seoul 08826, South Korea

2. School of Chemical and Biological Engineering, and Institute of Chemical Processes, College of Engineering, Seoul National University 2 , 1 Gwanak-ro, Gwanak-gu, Seoul 08826, South Korea

3. Samsung Display Company, Ltd 3 ., 1 Samsung-ro, Giheung-gu, Yongin-si, Gyeonggi-do 17113, South Korea

4. School of Electrical Engineering and Computer Science, Gwangju Institute of Science and Technology (GIST) 4 , 123 Cheomdangwagi-ro, Buk-gu, Gwangju 61005, South Korea

5. Semiconductor R&D Center, Samsung Electronics Co., Ltd 5 ., 1 Samsungjeonja-ro, Hwaseong-si, Gyeonggi-do 18448, South Korea

6. Department of Applied Bioengineering, Graduate School of Convergence Science and Technology, Seoul National University 6 , 1 Gwanak-ro, Gwanak-gu, Seoul 08826, South Korea

7. Department of Electronic Engineering, Kyung Hee University 7 , 1709 Deogyeong-daero, Giheung-gu, Yongin-si, Gyeonggi-do 17104, South Korea

8. Advanced Institutes of Convergence Technology 8 , 145 Gwanggyo-ro, Yeongtong-gu, Suwon 16229, South Korea

Abstract

Li+ electrolyte-gated transistors (EGTs) have attracted significant attention as artificial synapses because of the fast response of Li+ ion, low operating voltage, and applicability to flexible electronics. Due to the inherent nature of Li+ ion, Li+ EGTs show, however, limitations, such as poor long-term synaptic plasticity and nonlinear/nonsymmetric conductance update, which hinder the practical applications of artificial synapses. Herein, Li+ EGTs integrated with poly(vinylidene fluoride-co-trifluoroethylene) (PVDF-TrFE) ferroelectric polymer as a channel–electrolyte interlayer are presented. Owing to the polarized domains of PVDF-TrFE, the transport of Li+ ions at the channel–electrolyte interface is accelerated, and Li+ ions effectively penetrate the channel. Moreover, the self-diffusion of Li+ ions from the channel to the electrolyte is suppressed by the downward polarized domains. Li+ EGTs, therefore, successfully demonstrate synaptic characteristics, including excitatory postsynaptic current, short-/long-term synaptic plasticity, and paired-pulse facilitation. Also, conductance update in Li+ EGTs shows a dynamic range (Gmax/Gmin) of 92.42, high linearity, and distinct stability over 100 cycles. Based on their synaptic characteristics, inference simulations using a convolution neural network for the CIFAR-10 dataset imply that Li+ EGTs are suitable as artificial synapses with an inference accuracy of 89.13%. The new methodological approach addressing modulation of ion dynamics at the interface is introduced for developing practical synaptic devices.

Funder

National Research Foundation of Korea

Korea Institute for Advancement of Technology

Publisher

AIP Publishing

Subject

General Physics and Astronomy

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