4.8 Review

Microfluidics for Electrochemical Energy Conversion

期刊

CHEMICAL REVIEWS
卷 122, 期 7, 页码 7236-7266

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.chemrev.1c00499

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资金

  1. Natural Sciences and Engineering Research Council of Canada
  2. Canada Foundation for Innovation
  3. British Columbia Knowledge Development Fund
  4. ERC Consolidator grant [648518]
  5. Canada Research Chairs program
  6. Marie Sklodowska-Curie European Fellowship within the European Union [101033075-SPRICE]
  7. European Research Council (ERC) [648518] Funding Source: European Research Council (ERC)

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This review comprehensively synthesizes the best practices in the field of microfluidics for electrochemical energy conversion, including cell designs, fabrication techniques, and device functions. It assesses all research contributions and discusses emerging technologies and future research directions.
Electrochemical energy conversion is an important supplement for storage and on-demand use of renewable energy. In this regard, microfluidics offers prospects to raise the efficiency and rate of electrochemical energy conversion through enhanced mass transport, flexible cell design, and ability to eliminate the physical ion-exchange membrane, an essential yet costly element in conventional electrochemical cells. Since the 2002 invention of the microfluidic fuel cell, the research field of microfluidics for electrochemical energy conversion has expanded into a great variety of cell designs, fabrication techniques, and device functions with a wide range of utility and applications. The present review aims to comprehensively synthesize the best practices in this field over the past 20 years. The underlying fundamentals and research methods are first summarized, followed by a complete assessment of all research contributions wherein microfluidics was proactively utilized to facilitate energy conversion in conjunction with electrochemical cells, such as fuel cells, flow batteries, electrolysis cells, hybrid cells, and photoelectrochemical cells. Moreover, emerging technologies and analytical tools enabled by microfluidics are also discussed. Lastly, opportunities for future research directions and technology advances are proposed.

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