Published November 13, 2024 | Version Supplemental Material
Journal Article Open

Biomimetic Redox Capacitor To Control the Flow of Electrons

  • 1. Institute for Bioscience and Biotechnology Research, University of Maryland, College Park, Maryland, 20742, United States
  • 2. ROR icon University of Maryland, College Park
  • 3. ROR icon Wuhan University of Science and Technology
  • 4. ROR icon California Institute of Technology

Abstract

In biological systems, electrons, energy, and information “flow” through the redox modality, and we ask, does biology have redox capacitor capabilities for storing electrons? We describe emerging evidence indicating that biological phenolic/catecholic materials possess such redox capacitor properties. We further describe results that show biomimetic catecholic materials are reversibly redox-active with redox potentials in the midphysiological range and can repeatedly accept electrons (from various reductants), store electrons, and donate electrons (to various oxidants). Importantly, catechol-containing films that are assembled onto electrode surfaces can enhance the flow of electrons, energy, and information. Further, catechol-containing films can serve as redox-based interactive materials capable of actuating biological responses by turning on gene expression from redox-responsive genetic circuits. Looking forward, we envision that the emerging capabilities for measuring dynamic redox processes and reversible redox states will provide new insights into redox biology and will also catalyze new technological opportunities for information processing and energy harvesting.

Copyright and License

© 2024 American Chemical Society.

Funding

This work was supported by the National Science Foundation (MCB no. 2227598), the Defense Threat Reduction Agency (HDTRA1-19-0021), and the Gordon and Betty Moore Foundation (no. 11395).

Supplemental Material

  • Figure showing the analysis of catechol–graphene–chitosan composite hydrogel films: am4c13032_si_001.pdf

 

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Additional details

Funding

National Science Foundation
MCB 2227598
Defense Threat Reduction Agency
HDTRA 1-19-0021
Gordon and Betty Moore Foundation
11395

Dates

Accepted
2024-10-21
Accepted
Available
2024-10-31
Published online
Available
2024-11-13
Published in issue

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Publication Status
Published