Conformation-modulated three-dimensional electrocatalysts for high-performance fuel cell electrodes
- Authors
- Kim, Jong Min; Jo, Ahrae; Lee, Kyung Ah; Han, Hyeuk Jin; Kim, Ye Ji; Kim, Ho Young; Lee, Gyu Rac; Kim, Minjoon; Park, Yemin; Kang, Yun Sik; Jung, Juhae; Chae, Keun Hwa; Lee, Eoyoon; Ham, Hyung Chul; Ju, Hyunchul; Jung, Yeon Sik; Kim, Jin Young
- Issue Date
- 2021-07
- Publisher
- AMER ASSOC ADVANCEMENT SCIENCE
- Citation
- SCIENCE ADVANCES, v.7, no.30
- Abstract
- Unsupported Pt electrocatalysts demonstrate excellent electrochemical stability when used in polymer electrolyte membrane fuel cells; however, their extreme thinness and low porosity result in insufficient surface area and high mass transfer resistance. Here, we introduce three-dimensionally (3D) customized, multiscale Pt nanoarchitectures (PtNAs) composed of dense and narrow (for sufficient active sites) and sparse (for improved mass transfer) nanoscale building blocks. The 3D-multiscale PtNA fabricated by ultrahigh-resolution nanotransfer printing exhibited excellent performance (45% enhanced maximum power density) and high durability (only 5% loss of surface area for 5000 cycles) compared to commercial Pt/C. We also theoretically elucidate the relationship between the 3D structures and cell performance using computational fluid dynamics. We expect that the structure-controlled 3D electrocatalysts will introduce a new pathway to design and fabricate high-performance electrocatalysts for fuel cells, as well as various electrochemical devices that require the precision engineering of reaction surfaces and mass transfer.
- Keywords
- OXYGEN REDUCTION REACTION; THIN-FILMS; PHASE; CHALLENGES; OPERATION; CATALYSTS; MODEL; 3D Pt architecture; oxygen reduction reaction; nanotransfer printing; fuel cell; electrocatalyst
- ISSN
- 2375-2548
- URI
- https://pubs.kist.re.kr/handle/201004/116791
- DOI
- 10.1126/sciadv.abe9083
- Appears in Collections:
- KIST Article > 2021
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