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Program Scientific Program
POS5-1002

Electro‐Steric Ion Confinement in Polyelectrolyte Networks for Robust Nonvolatile Artificial Synapse

When and Where

Nov 30, -0001   00:00 - 00:00

Presenter(s)

Jinbo Kim (Yonsei University)

Co-Author(s)

Jeonghun Kim (Yonsei university)

Abstract

Organic electrochemical synaptic transistors (OESTs) have garnered considerable attention as promising neuromorphic devices owing to their low operating voltage and high ionic sensitivity. Nevertheless, realizing nonvolatile synaptic behavior in OESTs remains fundamentally challenging because ion relaxation is governed by electrolyte-level transport and trapping rather than channel properties, thereby limiting channel-centric design strategies. To overcome this intrinsic trade-off, the stoichiometric composition of an ion-gating polyelectrolyte is modulated, offering a robust alternative to complex channel-centric modifications. This study demonstrates that a poly(styrene sulfonate) (PSS)-dominated architecture (1PAA–3PSS) induces a distinct dual-confinement mechanism that transforms ion relaxation kinetics from a diffusion-dominated regime to a trap-controlled regime. In this electrolyte architecture, synergistic steric and electrostatic confinement effectively immobilizes doped ions at the channel interface. This mechanism enables sustained electrochemical doping, as evidenced by the persistence of polaronic states for up to 1,200 s after bias removal. Consequently, the optimized OESTs exhibit outstanding nonvolatile synaptic retention, highly symmetric weight modulation, and robust switching endurance over more than 5,000 operation cycles. This work establishes a scalable, electrolyte-centric paradigm for regulating ion transport dynamics in high-performance neuromorphic and bioinspired electronic systems.
Supported by
Korea Tourism Organization BUSAN TOURISM ORGANIZATION
Sponsored by
Korea Research Institute of Chemical Technology Advanced Materials Division Sejin CI DONGJIN SEMICHEM HAEDONG SCIENCE FOUNDATION COSMAX EcoProBM Young Eng. Sci. Doosan SAMSUNG SDI S-OIL 한국도레이과학진흥재단