Bio‐Inspired Sandwich‐Structured All‐Day‐Round Solar Evaporator for Synergistic Clean Water and Electricity Generation

Author:

Niu Ran12,Ren Jiaxin1,Koh Junqiang Justin3,Chen Ling1,Gong Jiang12,Qu Jinping12,Xu Xiaodong4,Azadmanjiri Jalal5,Min Jiakang46ORCID

Affiliation:

1. Key Laboratory of Material Chemistry for Energy Conversion and Storage Ministry of Education Hubei Key Laboratory of Material Chemistry and Service Failure Hubei Engineering Research Center for Biomaterials and Medical Protective Materials Semiconductor Chemistry Center School of Chemistry and Chemical Engineering Huazhong University of Science and Technology Wuhan 430074 China

2. Guangdong Provincial Key Laboratory of Technique and Equipment for Macromolecular Advanced Manufacturing School of Mechanical and Automotive Engineering Key Laboratory of Polymer Processing Engineering (South China University of Technology) Ministry of Education South China University of Technology Guangzhou 510641 China

3. Institute of Materials Research and Engineering (IMRE) Agency for Science, Technology and Research (A*STAR) 2 Fusionopolis Way, Innovis #08‐03 Singapore 138634 Singapore

4. United Microelectronics Center (CUMEC) No. 20 Xiyuan South Street Shapingba Chongqing 401332 China

5. Department of Inorganic Chemistry University of Chemistry and Technology Prague Technická 5 Prague 6 166 28 Czech Republic

6. Department of Chemistry National University of Singapore 3 Science Drive 3 Singapore 117543 Singapore

Abstract

AbstractThe integration of solar‐driven interfacial evaporation and electricity co‐generation is considered a promising approach to simultaneously alleviate freshwater scarcity and the energy crisis. However, affected by intermittent solar irradiation/uncontrollable weather, the overall performance of solar‐driven evaporation in the real world is greatly reduced. Herein, inspired by antifreeze proteins in beetles that survive in extreme climates, all‐weather solar‐driven interfacial evaporators with a sandwich structure are designed. The top and bottom layers composed of MnO2‐modified cotton cloth are used for photothermal conversion and water transport, meanwhile, the middle layer made of a phase change microcapsule/hydrogel composite serves for heat storage and release. Under 1 kW m−2 irradiation, the evaporator exhibits a high evaporation rate of 2.67 kg m−2 h−1 and an efficiency of 89.5%. In the dark, the heat released from the phase change layer supports an evaporation rate of 0.43 kg m−2 h−1, 3.6 times that of pure water. Additionally, assembled with a thermoelectric module, the hybrid device achieves a stable output electricity power of 0.42 W m−2 under 1‐sun illumination and a prolonged output for 30 min in the dark. This work provides a novel approach for full‐time solar‐powered steam‐electricity co‐generation and a proof of concept for biomimetic steam generation/heat management integration.

Funder

National Natural Science Foundation of China

Huazhong University of Science and Technology

Publisher

Wiley

Subject

General Materials Science,Renewable Energy, Sustainability and the Environment

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