Common-Ion Effect Triggered Highly Sustained Seawater Electrolysis with Additional NaCl Production

Author:

Li Pengsong1,Wang Shiyuan1,Samo Imran Ahmed1,Zhang Xingheng1,Wang Zhaolei1,Wang Cheng2,Li Yang1,Du Yiyun3,Zhong Yang1,Cheng Congtian1,Xu Wenwen4,Liu Xijun5,Kuang Yun1ORCID,Lu Zhiyi46ORCID,Sun Xiaoming1ORCID

Affiliation:

1. State Key Laboratory of Chemical Resource Engineering, Beijing Advanced Innovation Centre for Soft Matter Science and Engineering, College of Chemistry, Beijing University of Chemical Technology, Beijing 100029, China

2. Chinese Research Academy of Environmental Sciences Institution, Beijing 100012, China

3. State Nuclear Electric Power Planning Design & Research Institute Co., Ltd., Beijing, China

4. Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences, Ningbo, 315201 Zhejiang, China

5. Center for Electron Microscopy and Tianjin Key Lab of Advanced Functional Porous Materials, Institute for New Energy Materials & Low-Carbon Technologies, School of Materials and Engineering, Tianjin University of Technology, Tianjin 300384, China

6. University of Chinese Academy of Sciences, Beijing 100049, China

Abstract

Developing efficient seawater-electrolysis system for mass production of hydrogen is highly desirable due to the abundance of seawater. However, continuous electrolysis with seawater feeding boosts the concentration of sodium chloride in the electrolyzer, leading to severe electrode corrosion and chlorine evolution. Herein, the common-ion effect was utilized into the electrolyzer to depress the solubility of NaCl. Specifically, utilization of 6 M NaOH halved the solubility of NaCl in the electrolyte, affording efficient, durable, and sustained seawater electrolysis in NaCl-saturated electrolytes with triple production of H2, O2, and crystalline NaCl. Ternary NiCoFe phosphide was employed as a bifunctional anode and cathode in simulative and Ca/Mg-free seawater-electrolysis systems, which could stably work under 500 mA/cm2 for over 100 h. We attribute the high stability to the increased Na+ concentration, which reduces the concentration of dissolved Cl- in the electrolyte according to the common-ion effect, resulting in crystallization of NaCl, eliminated anode corrosion, and chlorine oxidation during continuous supplementation of Ca/Mg-free seawater to the electrolysis system.

Funder

Ministry of Education of the People's Republic of China

Publisher

American Association for the Advancement of Science (AAAS)

Subject

Multidisciplinary

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