Surface-dominant micro/nanofluidics for efficient green energy conversion

Author:

Wang Cong1ORCID,Seo Eunseok2ORCID,Park Jungyul2ORCID

Affiliation:

1. School of Mechanical Engineering and Electronic Information, China University of Geosciences (Wuhan) 1 , 388 Lumo Road, Wuhan 430074, China

2. Department of Mechanical Engineering, Sogang University 2 , 35 Baekbeom-ro (Sinsu-dong), Mapo-gu, Seoul 04107, Republic of Korea

Abstract

Green energy conversion in aqueous systems has attracted considerable interest owing to the sustainable clean energy demand resulting from population and economic growth and urbanization, as well as the significant potential energy from water resources and other regenerative sources coupled with fluids. In particular, molecular motion based on intrinsic micro/nanofluidic phenomena at the liquid–solid interface (LSI) is crucial for efficient and sustainable green energy conversion. The electrical double layer is the main factor affecting transport, interaction between molecules and surfaces, non-uniform ion distribution, synthesis, stimulated reactions, and motion by external renewable resources in both closed nanoconfinement and open surfaces. In this review, we summarize the state-of-the-art progress in physical and chemical reaction-based green energy conversion in LSI, including nanoscale fabrication, key mechanisms, applications, and limitations for practical implementation. The prospects for resolving critical challenges in this field and inspiring other promising research areas in the infancy stage (studying chemical and biological dynamics at the single-molecule level and nanofluidic neuromorphic computing) are also discussed.

Funder

China University of Geosciences

National Research Foundation of Korea

Korea Environmental Industry and Technology Institute

Publisher

AIP Publishing

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