| Literature DB >> 34672731 |
Cheng-Long Yang1, Li-Na Wang2, Peng Yin1, Jieyuan Liu2, Ming-Xi Chen1, Qiang-Qiang Yan1, Zheng-Shu Wang1, Shi-Long Xu1, Sheng-Qi Chu3, Chunhua Cui4, Huanxin Ju5, Junfa Zhu5, Yue Lin1, Jianglan Shui2, Hai-Wei Liang1.
Abstract
Atomically ordered intermetallic nanoparticles are promising for catalytic applications but are difficult to produce because the high-temperature annealing required for atom ordering inevitably accelerates metal sintering that leads to larger crystallites. We prepared platinum intermetallics with an average particle size of <5 nanometers on porous sulfur-doped carbon supports, on which the strong interaction between platinum and sulfur suppresses metal sintering up to 1000°C. We synthesized intermetallic libraries of small nanoparticles consisting of 46 combinations of platinum with 16 other metal elements and used them to study the dependence of electrocatalytic oxygen-reduction reaction activity on alloy composition and platinum skin strain. The intermetallic libraries are highly mass efficient in proton-exchange-membrane fuel cells and could achieve high activities of 1.3 to 1.8 amperes per milligram of platinum at 0.9 volts.Entities:
Year: 2021 PMID: 34672731 DOI: 10.1126/science.abj9980
Source DB: PubMed Journal: Science ISSN: 0036-8075 Impact factor: 47.728