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Realizing Superior Durability of Water Electrolyzer Using Anion Exchange Membrane with an Interstitial Alkyl Chain: From a Single Cell to Large-Sized 1-cell Stack

Title of paper
Realizing Superior Durability of Water Electrolyzer Using Anion Exchange Membrane with an Interstitial Alkyl Chain: From a Single Cell to Large-Sized 1-cell Stack
Author
[박태호 교수 연구실] 간질 알킬 사슬을 가진 음이온 교환막을 이용한 단위 전지 및 대형 스택 수전해 장치의 뛰어난 내구성 구현
Publication in journal
Publication in journal: Advanced Energy Materials
Publication date
20240610

 

Abstract

 

Improving the hydroxide conductivity and dimensional stability of anion exchange membranes (AEMs) while retaining their high alkaline stability is necessary to realize the commercialization of AEM water electrolysis (AEMWE). A strategy for improving the hydroxide conductivity and dimensional stability of AEMs by inserting fluorine atoms in the core structure of the backbone is reported, which not only reduces the glass transition temperature of the polymer due to steric strain, but also induces distinct phase separation by inducing polarity discrimination to facilitate the formation of ion transport channels. The resulting PFPFTP-QA AEM with fluorine into the core structure shows high hydroxide conductivity (>159 mS cm−1 at 80 °C), favorable dimensional stability (>25% at 80 °C), and excellent alkaline stability for 1000 h in 2 m KOH solution at 80 °C. Moreover, the PFPFTP-QA is used to construct an AEMWE cell with a platinum group metal (PGM)–free NiFe anode, which exhibits the current density of 6.86 A cm−2 at 1.9 V at 80 °C, the highest performance in Pt/C cathode and PGM-free anode reports so far and operates stably for over 100 h at a constant current of 0.5 A cm−2.

 

DOI: 10.1002/aenm.202401725

Linkhttps://onlinelibrary.wiley.com/doi/10.1002/aenm.202401725