Synergistic Effect of Crown Ether and Main‐Chain Engineering for Boosting Hydrogen Evolution of Polymer Photocatalysts in Seawater

Author:

Chang Chih‐Li12,Huang Tse‐Fu1ORCID,Lin Wei‐Cheng1,Ting Li‐Yu1,Shih Chin‐Hsuan3,Chen Yan‐Heng1,Liu Jia‐Jen1,Lin Yu‐Tung1,Tseng Yuang‐Ting1,Wu Yi‐Hsiang1,Sun Yu‐En1,Elsayed Mohamed Hammad14,Chen Chin‐Wen5ORCID,Yu Chi‐Hua36ORCID,Chou Ho‐Hsiu17ORCID

Affiliation:

1. Department of Chemical Engineering National Tsing Hua University Hsinchu 300044 Taiwan

2. Research Center for Applied Science Academia Sinica Taipei 11529 Taiwan

3. Academy of Innovative Semiconductor and Sustainable Manufacturing National Cheng Kung University Tainan 701401 Taiwan

4. Department of Chemistry Faculty of Science Al‐Azhar University Nasr City Cairo 11884 Egypt

5. Department of Molecular Science and Engineering National Taipei University of Technology Taipei 106344 Taiwan

6. Department of Engineering Science National Cheng Kung University Tainan 701401 Taiwan

7. College of Semiconductor Research National Tsing Hua University Hsinchu 300044 Taiwan

Abstract

AbstractPhotocatalytic hydrogen evolution from natural seawater faces the severe challenges of abundant salts, which adsorb on the active sites and result in undesirable side reactions and photocatalyst poisoning. Herein, a series of main‐chain‐engineered discontinuously conjugated polymer (DCP) photocatalysts is presented with bifunctional crown ether (CE) structures for hydrogen evolution from seawater. The hydrophilic CE can significantly inhibit the aggregation of DCPs induced by salts. Meanwhile, cyclic CE can effectively adsorb cations to uncover the active sites to increase their interaction with protons, which can increase the hydrogen evolution rates and significantly reduce the efficiency roll‐off in natural seawater. Through atomistic studies, the formation of hydrogen bonds with bifunctional CE is elucidated and further analysis of the microscale mechanisms is also conducted using molecular dynamics and ab initio techniques. This work suggests that CE‐based polymer has the potential to enhance its ability to produce hydrogen through photocatalysis using seawater.

Publisher

Wiley

Subject

General Materials Science,Renewable Energy, Sustainability and the Environment

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