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Designing a Nanoscale Three-phase Electrochemical Pathway to Promote Pt-catalyzed Formaldehyde Oxidation
Author(s) -
Jinwei Xu,
Xin Xiao,
Zewen Zhang,
Yecun Wu,
David Boyle,
Hiang Kwee Lee,
Wenxiao Huang,
Yuzhang Li,
Hansen Wang,
Jun Li,
Yangying Zhu,
Baoliang Chen,
William A. Mitch,
Yi Cui
Publication year - 2020
Publication title -
nano letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 4.853
H-Index - 488
eISSN - 1530-6992
pISSN - 1530-6984
DOI - 10.1021/acs.nanolett.0c03560
Subject(s) - catalysis , electrochemistry , chemical engineering , electrolyte , petrochemical , heterogeneous catalysis , chemistry , nanotechnology , phase (matter) , formaldehyde , materials science , organic chemistry , electrode , engineering
Gas-phase heterogeneous catalysis is a process spatially constrained on the two-dimensional surface of a solid catalyst. Here, we introduce a new toolkit to open up the third dimension. We discovered that the activity of a solid catalyst can be dramatically promoted by covering its surface with a nanoscale-thin layer of liquid electrolyte while maintaining efficient delivery of gas reactants, a strategy we call three-phase catalysis. Introducing the liquid electrolyte converts the original surface catalytic reaction into an electrochemical pathway with mass transfer facilitated by free ions in a three-dimensional space. We chose the oxidation of formaldehyde as a model reaction and observed a 25000-times enhancement in the turnover frequency of Pt in three-phase catalysis as compared to conventional heterogeneous catalysis. We envision three-phase catalysis as a new dimension for catalyst design and anticipate its applications in more chemical reactions from pollution control to the petrochemical industry.

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