Roadmap for Sustainable Mixed Ionic-Electronic Conducting Membranes

Guoxing Chen, Armin Feldhoff, Anke Weidenkaff, Claudia Li, Shaomin Liu, Xuefeng Zhu, Jaka Sunarso, Kevin Huang, Xiao Yu Wu, Ahmed F. Ghoniem, Weishen Yang, Jian Xue, Haihui Wang, Zongping Shao, Jack H. Duffy, Kyle S. Brinkman, Xiaoyao Tan, Yan Zhang, Heqing Jiang, Rémi CostaKaspar Andreas Friedrich, Ralf Kriegel

Research output: Contribution to journalReview articlepeer-review

106 Scopus citations

Abstract

Mixed ionic-electronic conducting (MIEC) membranes have gained growing interest recently for various promising environmental and energy applications, such as H2 and O2 production, CO2 reduction, O2 and H2 separation, CO2 separation, membrane reactors for production of chemicals, cathode development for solid oxide fuel cells, solar-driven evaporation and energy-saving regeneration as well as electrolyzer cells for power-to-X technologies. The purpose of this roadmap, written by international specialists in their fields, is to present a snapshot of the state-of-the-art, and provide opinions on the future challenges and opportunities in this complex multidisciplinary research field. As the fundamentals of using MIEC membranes for various applications become increasingly challenging tasks, particularly in view of the growing interdisciplinary nature of this field, a better understanding of the underlying physical and chemical processes is also crucial to enable the career advancement of the next generation of researchers. As an integrated and combined article, it is hoped that this roadmap, covering all these aspects, will be informative to support further progress in academics as well as in the industry-oriented research toward commercialization of MIEC membranes for different applications.

Original languageEnglish
Article number2105702
JournalAdvanced Functional Materials
Volume32
Issue number6
DOIs
StatePublished - 2 Feb 2022

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