Self‐Cleaning Solar Evaporation Facilitating Water Electrolysis for Hydrogen Generation From Seawater

H Hongqi Zou (State Key Laboratory of Chemical Resource Engineering College of Chemical Engineering Beijing University of Chemical Technology Beijing People's Republic of China) J Jun Qi X Xingdong Wang (State Key Laboratory of Polymer Science and Technology Changchun Institute of Applied Chemistry, Chinese Academy of Sciences Changchun Jilin P.R. China) Y Yangjun Ma (State Key Laboratory of Chemical Resource Engineering College of Chemical Engineering Beijing University of Chemical Technology Beijing People's Republic of China) Y Yi Ma Y Yadong Du (State Key Laboratory of Chemical Resource Engineering College of Chemical Engineering Beijing University of Chemical Technology Beijing People's Republic of China) J Jiachun Li Z Zhanhao Jiang (State Key Laboratory of Chemical Resource Engineering College of Chemical Engineering Beijing University of Chemical Technology Beijing People's Republic of China) Z Zhong‐Zhen Yu (Center For Nanomaterials and Nanocomposites College of Materials Science and Engineering Beijing University of Chemical Technology Beijing People's Republic of China) J Jieshan Qiu (College of Chemical Engineering)

Abstract

ABSTRACT Clean energy demands and zero‐carbon commitments have stimulated the desire for stable seawater electrolysis, yet device corrosion and catalyst deactivation seriously hinder industrial‐scale deployment. Here we present an innovative integrated platform that couples photothermal evaporation and desalinated water electrolysis. Relying on a hydrogen‐bonding crosslinking mechanism and anion‐induced Hofmeister effects, a lightweight spherical evaporator uniformly coated with a modified needle coke gel film is designed, exhibiting attractive continuous desalination performance (2.32 kg m −2 h −1 in 3.5 wt%) and salt‐resistant self‐cleaning capabilities. Subsequently, two independently improved evaporation‐collection systems outperform the traditional configuration during extended all‐weather outdoor experiments. Especially, the gas‐stripping assisted evaporation system holds powerful resistance capacity to adverse weather, achieving 5 times more water yield on a rainy day. Importantly, their seamless adaptation to anion/cation exchange membrane electrolysis systems has pioneered the long‐term application of advanced membrane electrodes in desalinated water electrolysis, cleverly addressing corrosion and catalyst deactivation barriers. This integrated strategy provides a practicable route for energy‐saving and large‐scale hydrogen extraction from seawater.

Article Details

Volume / Issue Vol. 1, Issue 1
Published June 30, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

H

Hongqi Zou

State Key Laboratory of Chemical Resource Engineering College of Chemical Engineering Beijing University of Chemical Technology Beijing People's Republic of China

J

Jun Qi

X

Xingdong Wang

State Key Laboratory of Polymer Science and Technology Changchun Institute of Applied Chemistry, Chinese Academy of Sciences Changchun Jilin P.R. China

Y

Yangjun Ma

State Key Laboratory of Chemical Resource Engineering College of Chemical Engineering Beijing University of Chemical Technology Beijing People's Republic of China

Y

Yi Ma

Y

Yadong Du

State Key Laboratory of Chemical Resource Engineering College of Chemical Engineering Beijing University of Chemical Technology Beijing People's Republic of China

J

Jiachun Li

Z

Zhanhao Jiang

State Key Laboratory of Chemical Resource Engineering College of Chemical Engineering Beijing University of Chemical Technology Beijing People's Republic of China

Z

Zhong‐Zhen Yu

Center For Nanomaterials and Nanocomposites College of Materials Science and Engineering Beijing University of Chemical Technology Beijing People's Republic of China

J

Jieshan Qiu

College of Chemical Engineering