Highly Efficient Nitrogen‐Fixing Microbial Hydrogel Device for Sustainable Solar Hydrogen Production

Author:

Lee Wang Hee12ORCID,Yoon Chang‐Kyu34ORCID,Park Hyunseo12,Park Ga‐Hee3,Jeong Jae Hwan5,Cha Gi Doo12,Lee Byoung‐Hoon12,Lee Juri2,Lee Chan Woo12,Bootharaju Megalamane S.12,Sunwoo Sung‐Hyuk12,Ryu Jaeyune12,Lee Changha2,Cho Yong‐Joon67,Nam Tae‐Wook38,Ahn Kyung Hyun2,Hyeon Taeghwan12ORCID,Seok Yeong‐Jae3ORCID,Kim Dae‐Hyeong129ORCID

Affiliation:

1. Center for Nanoparticle Research Institute for Basic Science (IBS) Seoul 08826 Republic of Korea

2. School of Chemical and Biological Engineering and Institute of Chemical Processes Seoul National University Seoul 08826 Republic of Korea

3. School of Biological Sciences and Institute of Microbiology Seoul National University Seoul 08826 Republic of Korea

4. Research Institute of Basic Science Seoul National University Seoul 08826 Republic of Korea

5. Department of Chemical Engineering Stanford University Stanford CA 94305 USA

6. Department of Molecular Bioscience College of Biomedical Science Kangwon National University Chuncheon Gangwon 24341 Republic of Korea

7. Multidimensional Genomics Research Center Kangwon National University Chuncheon Gangwon 24341 Republic of Korea

8. MightyBugs, Inc. Busan 46918 Republic of Korea

9. Department of Materials Science and Engineering Seoul National University Seoul 08826 Republic of Korea

Abstract

AbstractConversion of sunlight and organic carbon substrates to sustainable energy sources through microbial metabolism has great potential for the renewable energy industry. Despite recent progress in microbial photosynthesis, the development of microbial platforms that warrant efficient and scalable fuel production remains in its infancy. Efficient transfer and retrieval of gaseous reactants and products to and from microbes are particular hurdles. Here, inspired by water lily leaves floating on water, a microbial device designed to operate at the air–water interface and facilitate concomitant supply of gaseous reactants, smooth capture of gaseous products, and efficient sunlight delivery is presented. The floatable device carrying Rhodopseudomonas parapalustris, of which nitrogen fixation activity is first determined through this study, exhibits a hydrogen production rate of 104 mmol h−1 m−2, which is 53 times higher than that of a conventional device placed at a depth of 2 cm in the medium. Furthermore, a scaled‐up device with an area of 144 cm2 generates hydrogen at a high rate of 1.52 L h−1 m−2. Efficient nitrogen fixation and hydrogen generation, low fabrication cost, and mechanical durability corroborate the potential of the floatable microbial device toward practical and sustainable solar energy conversion.

Funder

Institute for Basic Science

National Research Foundation

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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