Rational design of artificial redox-mediating systems toward upgrading photobioelectrocatalysis

Author:

Weliwatte N. SamaliORCID,Grattieri MatteoORCID,Minteer Shelley D.ORCID

Abstract

AbstractPhotobioelectrocatalysis has recently attracted particular research interest owing to the possibility to achieve sunlight-driven biosynthesis, biosensing, power generation, and other niche applications. However, physiological incompatibilities between biohybrid components lead to poor electrical contact at the biotic-biotic and biotic-abiotic interfaces. Establishing an electrochemical communication between these different interfaces, particularly the biocatalyst-electrode interface, is critical for the performance of the photobioelectrocatalytic system. While different artificial redox mediating approaches spanning across interdisciplinary research fields have been developed in order to electrically wire biohybrid components during bioelectrocatalysis, a systematic understanding on physicochemical modulation of artificial redox mediators is further required. Herein, we review and discuss the use of diffusible redox mediators and redox polymer-based approaches in artificial redox-mediating systems, with a focus on photobioelectrocatalysis. The future possibilities of artificial redox mediator system designs are also discussed within the purview of present needs and existing research breadth.

Funder

Fondazione CON IL SUD

Office of Naval Research

Università degli Studi di Bari Aldo Moro

Publisher

Springer Science and Business Media LLC

Subject

Physical and Theoretical Chemistry

Reference204 articles.

1. DNV GL AS. (2019). Energy transition outlook 2020. https://www.eto.dnv.com/2019/download.

2. International Energy Agency. (2020) Global electricity demand to rebound modestly in 2021 after historic shock from pandemic. https://www.iea.org/news/global-electricity-demand-to-rebound-modestly-in-2021-after-historicshock-from-pandemic.

3. Tiantian Zhang, H. Y. (2019). Chapter 7—high efficiency plants and building integrated renewable energy systems. In F. Asdrubali & U. Desideri (Eds.), Handbook of energy efficiency in buildings (pp. 441–595). Butterworth-Heinemann.

4. Pudasainee, D., Kurian, V., & Gupta, R. (2020). 2—coal: past, present, and future sustainable use. In T. M. Letcher (Ed.), Future enrgy (third edition) (pp. 21–48). Elsevier.

5. Alam, M. S., & Tanveer, M. S. (2020). Chapter 5—Conversion of biomass into biofuel: a cutting-edge technology. In L. Singh, A. Yousuf, & D. M. Mahapatra (Eds.), Bioreactors (pp. 55–74). Elsevier.

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