Local Multimodal Dynamics in Mixed Ionic-Electronic Conductors and Their Fingerprints in Organic Electrochemical Transistor Operation

Fuente: arXiv
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Main Authors: Tanwar, Shubham, Wu, Han-Yan, Yang, Chi-Yuan, Millan-Solsona, Ruben, Fabiano, Simone, Kyndiah, Adrica, Gomila, Gabriel
Format: Preprint
Published: 2026
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author Tanwar, Shubham
Wu, Han-Yan
Yang, Chi-Yuan
Millan-Solsona, Ruben
Fabiano, Simone
Kyndiah, Adrica
Gomila, Gabriel
author_facet Tanwar, Shubham
Wu, Han-Yan
Yang, Chi-Yuan
Millan-Solsona, Ruben
Fabiano, Simone
Kyndiah, Adrica
Gomila, Gabriel
contents Mixed ionic-electronic conductors host tightly coupled interactions among mobile ions, electronic charges, and the polymer matrix, giving rise to complex multimodal responses spanning electrical, mechanical, and morphological transformations. These materials underpin organic electrochemical transistors (OECTs), which translate such interactions into low-voltage signal amplification and sensing for applications in bioelectronics, neuromorphic computing, and memory. Despite their central role, OECT current-voltage transfer characteristics are often treated phenomenologically, as both the local multimodal dynamics and their connection to global device response remain unresolved. Here, we reveal that the transfer curve encodes a cascade of spatially localized electrochemical transitions, each associated with distinct changes in conductivity, stiffness, and morphology, fundamentally redefining it as a spatially resolved fingerprint of device's internal state. Using automated operando multimodal in-liquid scanning dielectric microscopy, we directly map these dynamics and identify region-specific electrochemical thresholds governing the interplay between source, channel, and drain. We found that the local tip-sample electrostatic force serves as a remarkable mechanistic observable of coupled multimodal dynamics in mixed conductors. A physically grounded model links it to general material, interfacial, and geometric parameters, enabling mechanistic interpretation and predictive insights. Our work provides a new framework for probing and understanding mixed conduction in ion-electron coupled systems.
format Preprint
id arxiv_https___arxiv_org_abs_2601_05179
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Local Multimodal Dynamics in Mixed Ionic-Electronic Conductors and Their Fingerprints in Organic Electrochemical Transistor Operation
Tanwar, Shubham
Wu, Han-Yan
Yang, Chi-Yuan
Millan-Solsona, Ruben
Fabiano, Simone
Kyndiah, Adrica
Gomila, Gabriel
Materials Science
Soft Condensed Matter
Applied Physics
Mixed ionic-electronic conductors host tightly coupled interactions among mobile ions, electronic charges, and the polymer matrix, giving rise to complex multimodal responses spanning electrical, mechanical, and morphological transformations. These materials underpin organic electrochemical transistors (OECTs), which translate such interactions into low-voltage signal amplification and sensing for applications in bioelectronics, neuromorphic computing, and memory. Despite their central role, OECT current-voltage transfer characteristics are often treated phenomenologically, as both the local multimodal dynamics and their connection to global device response remain unresolved. Here, we reveal that the transfer curve encodes a cascade of spatially localized electrochemical transitions, each associated with distinct changes in conductivity, stiffness, and morphology, fundamentally redefining it as a spatially resolved fingerprint of device's internal state. Using automated operando multimodal in-liquid scanning dielectric microscopy, we directly map these dynamics and identify region-specific electrochemical thresholds governing the interplay between source, channel, and drain. We found that the local tip-sample electrostatic force serves as a remarkable mechanistic observable of coupled multimodal dynamics in mixed conductors. A physically grounded model links it to general material, interfacial, and geometric parameters, enabling mechanistic interpretation and predictive insights. Our work provides a new framework for probing and understanding mixed conduction in ion-electron coupled systems.
title Local Multimodal Dynamics in Mixed Ionic-Electronic Conductors and Their Fingerprints in Organic Electrochemical Transistor Operation
topic Materials Science
Soft Condensed Matter
Applied Physics
url https://arxiv.org/abs/2601.05179