Eliminating dissolution of platinum-based electrocatalysts at the atomic scale
Author(s) -
Pietro Papa Lopes,
Dongguo Li,
Haifeng Lv,
Chao Wang,
Dušan Tripković,
Yisi Zhu,
Roberto Schimmenti,
Hideo Daimon,
Yijin Kang,
Joshua Snyder,
Nigel Becknell,
Karren L. More,
Dušan Strmčnik,
Nenad M. Marković,
Manos Mavrikakis,
Vojislav R. Stamenković
Publication year - 2020
Publication title -
nature materials
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 14.344
H-Index - 483
eISSN - 1476-4660
pISSN - 1476-1122
DOI - 10.1038/s41563-020-0735-3
Subject(s) - dissolution , platinum , materials science , catalysis , electrolyte , durability , proton exchange membrane fuel cell , chemical engineering , nanoparticle , nanotechnology , nanoscopic scale , platinum nanoparticles , inorganic chemistry , electrode , chemistry , composite material , organic chemistry , engineering
A remaining challenge for the deployment of proton-exchange membrane fuel cells is the limited durability of platinum (Pt) nanoscale materials that operate at high voltages during the cathodic oxygen reduction reaction. In this work, atomic-scale insight into well-defined single-crystalline, thin-film and nanoscale surfaces exposed Pt dissolution trends that governed the design and synthesis of durable materials. A newly defined metric, intrinsic dissolution, is essential to understanding the correlation between the measured Pt loss, surface structure, size and ratio of Pt nanoparticles in a carbon (C) support. It was found that the utilization of a gold (Au) underlayer promotes ordering of Pt surface atoms towards a (111) structure, whereas Au on the surface selectively protects low-coordinated Pt sites. This mitigation strategy was applied towards 3 nm P 3 Au/C nanoparticles and resulted in the elimination of Pt dissolution in the liquid electrolyte, which included a 30-fold durability improvement versus 3 nm Pt/C over an extended potential range up to 1.2 V.
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