Charge-Encoded Hydrogels Program Sign-Reversible Belousov−Zhabotinsky Wave Transport

Abstract Reaction−diffusion waves provide a mode of spatiotemporal signal propagation in excitable media, yet passive control of their transport is typically limited to slowing or blocking. Here, using the Belousov−Zhabotinsky (BZ) reaction as a model-excitable system, we show that fixed ionic charge in polyelectrolyte hydrogels provides a sign-reversible, composition-tunable handle for wave transport. Anionic gels retard BZ waves by up to 35%, whereas cationic gels accelerate them by up to 23% above the incoming bulk reference; chemically distinct monomers reproduce the same sign-dependent trend. Reduced Oregonator modeling shows that diffusion-only control cannot account for the full response and is consistent with a shift in effective local excitability, without assigning a unique microscopic mechanism. A triangular anionic gel further converts local retardation into refraction-like steering. These results establish fixed-charge chemistry as a passive materials parameter for tuning BZ-wave speed and trajectory, providing a foundation for chemically encoded signal-routing materials.

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Publication Details

Journal
ACS Materials Letters
Published
2026-09-21
DOI
https://doi.org/10.1021/acsmaterialslett.6c00698
Primary Topic
Hydrogels: synthesis, properties, applications
Type
article
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article

Charge-Encoded Hydrogels Program Sign-Reversible Belousov−Zhabotinsky Wave Transport

Tomoko Ikeda‐Fukazawa, Won Seok Lee
ACS Materials Letters
Hydrogels: synthesis, properties, applications
article

Charge-Encoded Hydrogels Program Sign-Reversible Belousov−Zhabotinsky Wave Transport

Tomoko Ikeda‐Fukazawa, Won Seok Lee
article en

Abstract

Abstract Reaction−diffusion waves provide a mode of spatiotemporal signal propagation in excitable media, yet passive control of their transport is typically limited to slowing or blocking. Here, using the Belousov−Zhabotinsky (BZ) reaction as a model-excitable system, we show that fixed ionic charge in polyelectrolyte hydrogels provides a sign-reversible, composition-tunable handle for wave transport. Anionic gels retard BZ waves by up to 35%, whereas cationic gels accelerate them by up to 23% above the incoming bulk reference; chemically distinct monomers reproduce the same sign-dependent trend. Reduced Oregonator modeling shows that diffusion-only control cannot account for the full response and is consistent with a shift in effective local excitability, without assigning a unique microscopic mechanism. A triangular anionic gel further converts local retardation into refraction-like steering. These results establish fixed-charge chemistry as a passive materials parameter for tuning BZ-wave speed and trajectory, providing a foundation for chemically encoded signal-routing materials.

ACS Materials Letters
Meiji University (JP)
Openalex Percentile: Top 20%
Hydrogels: synthesis, properties, applications
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