Literature DB >> 35442645

Anion-Exchange Membrane Water Electrolyzers.

Naiying Du1,2, Claudie Roy2,3, Retha Peach4, Matthew Turnbull1,2, Simon Thiele4,5, Christina Bock1,2.   

Abstract

This Review provides an overview of the emerging concepts of catalysts, membranes, and membrane electrode assemblies (MEAs) for water electrolyzers with anion-exchange membranes (AEMs), also known as zero-gap alkaline water electrolyzers. Much of the recent progress is due to improvements in materials chemistry, MEA designs, and optimized operation conditions. Research on anion-exchange polymers (AEPs) has focused on the cationic head/backbone/side-chain structures and key properties such as ionic conductivity and alkaline stability. Several approaches, such as cross-linking, microphase, and organic/inorganic composites, have been proposed to improve the anion-exchange performance and the chemical and mechanical stability of AEMs. Numerous AEMs now exceed values of 0.1 S/cm (at 60-80 °C), although the stability specifically at temperatures exceeding 60 °C needs further enhancement. The oxygen evolution reaction (OER) is still a limiting factor. An analysis of thin-layer OER data suggests that NiFe-type catalysts have the highest activity. There is debate on the active-site mechanism of the NiFe catalysts, and their long-term stability needs to be understood. Addition of Co to NiFe increases the conductivity of these catalysts. The same analysis for the hydrogen evolution reaction (HER) shows carbon-supported Pt to be dominating, although PtNi alloys and clusters of Ni(OH)2 on Pt show competitive activities. Recent advances in forming and embedding well-dispersed Ru nanoparticles on functionalized high-surface-area carbon supports show promising HER activities. However, the stability of these catalysts under actual AEMWE operating conditions needs to be proven. The field is advancing rapidly but could benefit through the adaptation of new in situ techniques, standardized evaluation protocols for AEMWE conditions, and innovative catalyst-structure designs. Nevertheless, single AEM water electrolyzer cells have been operated for several thousand hours at temperatures and current densities as high as 60 °C and 1 A/cm2, respectively.

Entities:  

Year:  2022        PMID: 35442645      PMCID: PMC9284563          DOI: 10.1021/acs.chemrev.1c00854

Source DB:  PubMed          Journal:  Chem Rev        ISSN: 0009-2665            Impact factor:   72.087


  118 in total

1.  Self-crosslinked alkaline polymer electrolyte exceptionally stable at 90 °C.

Authors:  Jing Pan; Yan Li; Lin Zhuang; Juntao Lu
Journal:  Chem Commun (Camb)       Date:  2010-10-18       Impact factor: 6.222

2.  Phenyl Oxidation Impacts the Durability of Alkaline Membrane Water Electrolyzer.

Authors:  Dongguo Li; Ivana Matanovic; Albert S Lee; Eun Joo Park; Cy Fujimoto; Hoon T Chung; Yu Seung Kim
Journal:  ACS Appl Mater Interfaces       Date:  2019-03-04       Impact factor: 9.229

Review 3.  Electrochemical On-line ICP-MS in Electrocatalysis Research.

Authors:  Olga Kasian; Simon Geiger; Karl J J Mayrhofer; Serhiy Cherevko
Journal:  Chem Rec       Date:  2018-12-27       Impact factor: 6.771

4.  Tunable pH-dependent oxygen evolution activity of strontium cobaltite thin films for electrochemical water splitting.

Authors:  Yanuo Shi; Renjie Xie; Xuetao Liu; Nian Zhang; Carmela Aruta; Nan Yang
Journal:  Phys Chem Chem Phys       Date:  2019-07-12       Impact factor: 3.676

5.  Self-Templated Fabrication of MoNi4 /MoO3-x Nanorod Arrays with Dual Active Components for Highly Efficient Hydrogen Evolution.

Authors:  Yu-Yun Chen; Yun Zhang; Xing Zhang; Tang Tang; Hao Luo; Shuai Niu; Zhi-Hui Dai; Li-Jun Wan; Jin-Song Hu
Journal:  Adv Mater       Date:  2017-08-18       Impact factor: 30.849

6.  Phosphonium-functionalized polyethylene: a new class of base-stable alkaline anion exchange membranes.

Authors:  Kevin J T Noonan; Kristina M Hugar; Henry A Kostalik; Emil B Lobkovsky; Héctor D Abruña; Geoffrey W Coates
Journal:  J Am Chem Soc       Date:  2012-10-26       Impact factor: 15.419

7.  Facile electrodeposition of ternary Ni-Fe-Co alloy nanostructure as a binder free, cost-effective and durable electrocatalyst for high-performance overall water splitting.

Authors:  Gh Barati Darband; M Aliofkhazraei; A Sabour Rouhaghdam
Journal:  J Colloid Interface Sci       Date:  2019-03-29       Impact factor: 8.128

8.  Coupling Mo2 C with Nitrogen-Rich Nanocarbon Leads to Efficient Hydrogen-Evolution Electrocatalytic Sites.

Authors:  Yipu Liu; Guangtao Yu; Guo-Dong Li; Yuanhui Sun; Tewodros Asefa; Wei Chen; Xiaoxin Zou
Journal:  Angew Chem Int Ed Engl       Date:  2015-07-23       Impact factor: 15.336

9.  An ultrafine platinum-cobalt alloy decorated cobalt nanowire array with superb activity toward alkaline hydrogen evolution.

Authors:  Ziqiang Wang; Xiang Ren; Yonglan Luo; Liang Wang; Guanwei Cui; Fengyu Xie; Hongjing Wang; Ying Xie; Xuping Sun
Journal:  Nanoscale       Date:  2018-07-09       Impact factor: 7.790

10.  Oxygen Isotope Labeling Experiments Reveal Different Reaction Sites for the Oxygen Evolution Reaction on Nickel and Nickel Iron Oxides.

Authors:  Seunghwa Lee; Karla Banjac; Magalí Lingenfelder; Xile Hu
Journal:  Angew Chem Int Ed Engl       Date:  2019-06-17       Impact factor: 15.336

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