Redox-Regulated Nonvolatility Switching in Single-Nanopipette Memory Diodes

Abstract Nanofluidic memory devices featuring brain-mimicking functions could mitigate von Neumann architecture limitations, but long-term memory and controllable volatility–nonvolatility state switching remain challenging to establish, which are foundational for higher-order complexity functions. By integrating the redox polymer PEDOT:PSS into single-nanopipette diodes with memristor properties, hysteretic ion transport is regulated by coupled electron transfers, which switch nanotip conductivity hundredfold. Oxidation and reduction of PEDOT lock in different nanotip conductivity states, accompanied by stochastic current spikes and switching behavior. Reversible volatile and nonvolatile rectified memory effects are controlled by low electric potentials: redox-regulated conductivity state changes drive long-term memory and potential sweeping or pulse trains stimulate short-term ionic memory effects. Integrating gate controls in three-terminal transistors into two-terminal memristor diodes constitutes a generalizable design principle for advancing iontronics and neuromorphic computing capabilities.

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Publication Details

Journal
Journal of the American Chemical Society
Published
2026-09-19
DOI
https://doi.org/10.1021/jacs.6c10813
Primary Topic
Advanced Memory and Neural Computing
Type
article
Field-Weighted Citation Impact
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article

Redox-Regulated Nonvolatility Switching in Single-Nanopipette Memory Diodes

Gangli Wang, Dipak Baram, Ruoyu Yang
Journal of the American Chemical Society
Advanced Memory and Neural Computing
article

Redox-Regulated Nonvolatility Switching in Single-Nanopipette Memory Diodes

Gangli Wang, Dipak Baram, Ruoyu Yang
article en

Abstract

Abstract Nanofluidic memory devices featuring brain-mimicking functions could mitigate von Neumann architecture limitations, but long-term memory and controllable volatility–nonvolatility state switching remain challenging to establish, which are foundational for higher-order complexity functions. By integrating the redox polymer PEDOT:PSS into single-nanopipette diodes with memristor properties, hysteretic ion transport is regulated by coupled electron transfers, which switch nanotip conductivity hundredfold. Oxidation and reduction of PEDOT lock in different nanotip conductivity states, accompanied by stochastic current spikes and switching behavior. Reversible volatile and nonvolatile rectified memory effects are controlled by low electric potentials: redox-regulated conductivity state changes drive long-term memory and potential sweeping or pulse trains stimulate short-term ionic memory effects. Integrating gate controls in three-terminal transistors into two-terminal memristor diodes constitutes a generalizable design principle for advancing iontronics and neuromorphic computing capabilities.

Journal of the American Chemical Society
Georgia State University (US)
Affordable and clean energy
Openalex Percentile: Top 20%
Advanced Memory and Neural Computing
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Redox-Regulated Nonvolatility Switching in Single-Nanopipette Memory Diodes — Gangli Wang, Dipak Baram, et al. · Journal of the American Chemical Society (2026) | TGRS Research Map | TGRS