A Mediator‐Free Multi‐Ply Biofuel Cell Using an Interfacial Assembly between Hydrophilic Enzymes and Hydrophobic Conductive Oxide Nanoparticles with Pointed Apexes

Author:

Kang Minchul1,Nam Donghyeon1,Ahn Jeongyeon1,Chung Yoon Jang1,Lee Seung Woo2,Choi Young‐Bong3,Kwon Cheong Hoon4,Cho Jinhan156ORCID

Affiliation:

1. Department of Chemical and Biological Engineering Korea University 145 Anam‐ro, Seongbuk‐gu Seoul 02841 Republic of Korea

2. The George W. Woodruff School of Mechanical Engineering Georgia Institute of Technology Atlanta GA 30332 USA

3. Department of Chemistry College of Science & Technology Dankook University Dandae‐ro Cheonan‐si Chungnam 31116 Republic of Korea

4. Department of Energy Resources and Chemical Engineering Kangwon National University Samcheok 25913 Republic of Korea

5. KU‐KIST Graduate School of Converging Science & Technology Korea University 145 Anam‐ro, Seongbuk‐gu Seoul 02841 Republic of Korea

6. Soft Hybrid Materials Research Center Advanced Materials Research Division Korea Institute of Science and Technology (KIST) Seoul 02792 Republic of Korea

Abstract

AbstractBiofuel cells (BFCs) based on enzymatic electrodes hold great promise as power sources for biomedical devices. However, their practical use is hindered by low electron transfer efficiency and poor operational stability of enzymatic electrodes. Here, a novel mediator‐free multi‐ply BFC that overcomes these limitations and exhibits both substantially high‐power output and long‐term operational stability is presented. The approach involves the utilization of interfacial interaction‐induced assembly between hydrophilic glucose oxidase (GOx) and hydrophobic conductive indium tin oxide nanoparticles (ITO NPs) with distinctive shapes, along with a multi‐ply electrode system. For the preparation of the anode, GOx and oleylamine‐stabilized ITO NPs with bipod/tripod type are covalently assembled onto the host fiber electrode composed of multi‐walled carbon nanotubes and gold (Au) NPs. Remarkably, despite the contrasting hydrophilic and hydrophobic properties, this interfacial assembly approach allows for the formation of nanoblended GOx/ITO NP film, enabling efficient electron transfer within the anode. Additionally, the cathode is prepared by sputtering Pt onto the host electrode. Furthermore, the multi‐ply fiber electrode system exhibits unprecedented high‐power output (≈10.4 mW cm−2) and excellent operational stability (2.1 mW cm−2, ≈49% after 60 days of continuous operation). The approach can provide a basis for the development of high‐performance BFCs.

Funder

Ministry of Education, Science and Technology

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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