Flow Field Design Matters for High Current Density Zero-Gap CO2 Electrolyzers

  • Shu Yuan
  • , Rongyi Wang
  • , Rui Xue
  • , Lizhen Wu
  • , Guiru Zhang
  • , Huiyuan Li
  • , Qing Wang
  • , Jiewei Yin
  • , Liuxuan Luo
  • , Shuiyun Shen
  • , Liang An
  • , Xiaohui Yan
  • , Junliang Zhang

Research output: Journal article publicationJournal articleAcademic researchpeer-review

Abstract

The commercialization of CO2 electrolyzers requires higher current densities. This work demonstrates the necessity of flow field optimization for developing high-current-density CO2 electrolyzers. Using three typical flow fields (serpentine, parallel, and interdigitated) as tools and combining multiple characterization techniques, we investigated the principles for further flow field optimization. We recognized that optimizing the flow field involves more than enhancing CO2 distribution uniformity and ensuring no CO2 starvation. It is also necessary to provide CO2 flow-through transport while ensuring suppressed drainage behavior. Optimizing based on this principle, we fabricated a multiserpentine flow field, and it realized a high CO selectivity of about 95% at 0-350 mA cm-2 with 0.1 M KHCO3 and 50 °C cell temperature. Meanwhile, it achieves a high maximum CO partial current density of 409 mA cm-2, which is 43.5% higher than that of the conventional parallel flow field.

Original languageEnglish
Pages (from-to)5945-5954
Number of pages10
JournalACS Energy Letters
Volume9
Issue number12
DOIs
Publication statusPublished - 13 Dec 2024

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

ASJC Scopus subject areas

  • Chemistry (miscellaneous)
  • Renewable Energy, Sustainability and the Environment
  • Fuel Technology
  • Energy Engineering and Power Technology
  • Materials Chemistry

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