Customized Microenvironments Spontaneously Facilitate Coupled Engineering of Real‐Life Large‐Scale Clean Water Capture and Pollution Remediation

Author:

Wang Jinhu1ORCID,Sun Mingyuzhi1ORCID,Liu Changle1ORCID,Ye Yuchuan1ORCID,Chen Mengshan1ORCID,Zhao Zhemeng1ORCID,Zhang Yongcai2ORCID,Wu Xiaohu3,Wang Kaiwen4ORCID,Zhou Yingtang1ORCID

Affiliation:

1. National Engineering Research Center for Marine Aquaculture Marine Science and Technology College Zhejiang Ocean University Zhoushan 316004 P. R. China

2. School of Chemistry and Chemical Engineering Yangzhou University Yangzhou 225009 P. R. China

3. Shandong Institute of Advanced Technology Jinan 250100 P. R. China

4. Beijing Key Lab of Microstructure and Properties of Advanced Materials Beijing University of Technology Beijing 100124 P. R. China

Abstract

AbstractHarnessing abundant renewable resources and pollutants on a large scale to address environmental challenges, while providing sustainable freshwater, is a significant endeavour. This study presents the design of fully functional solar vaporization devices (SVD) based on organic–inorganic hybrid nanocomposites (CCMs‐x). These devices exhibit efficient photothermal properties that facilitate multitargeted interfacial reactions, enabling simultaneous catalysis of sewage and desalination. The localized interfacial heating generated by the photothermal effect of CCMs‐x triggers surface‐dominated catalysis and steam generation. The CCMs‐x SVD achieves a solar water‐vapor generation rate of 1.41 kg m−2 h−1 (90.8%), and it achieves over 95% removal of pollutants within 60 min under one‐sun for practical application. The exceptional photothermal conversion rate of wastewater for environmental remediation and water capture is attributed to customized microenvironments within the system. The integrated parallel reaction system in SVD ensures it is a real‐life application in multiple scenarios such as municipal/medical wastewater and brine containing high concentrations. Additionally, the SVD exhibits long‐term durability, antifouling functionality toward complex ionic contaminants. This study not only demonstrates a one‐stone–two‐birds strategy for large‐scale direct production of potable water from polluted seawater, but also opens up exciting possibilities for parallel production of energy and water resources.

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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