钌
催化作用
纳米颗粒
石墨烯
Atom(片上系统)
化学
光化学
材料科学
无机化学
纳米技术
计算机科学
嵌入式系统
有机化学
作者
Xueqin Mu,Suli Liu,Mengyang Zhang,Zechao Zhuang,Ding Chen,Yuru Liao,Hongyu Zhao,Shichun Mu,Dingsheng Wang,Zhihui Dai
标识
DOI:10.1002/anie.202319618
摘要
Abstract Efficient dual‐single‐atom catalysts are crucial for enhancing atomic efficiency and promoting the commercialization of fuel cells, but addressing the sluggish kinetics of hydrogen oxidation reaction (HOR) in alkaline media and the facile dual‐single‐atom site generation remains formidable challenges. Here, we break the local symmetry of ultra‐small ruthenium (Ru) nanoparticles by embedding cobalt (Co) single atoms, which results in the release of Ru single atoms from Ru nanoparticles on reduced graphene oxide (Co 1 Ru 1,n /rGO). In situ operando spectroscopy and theoretical calculations reveal that the oxygen‐affine Co atom disrupts the symmetry of ultra‐small Ru nanoparticles, resulting in parasitic Ru and Co dual‐single‐atom within Ru nanoparticles. The interaction between Ru single atoms and nanoparticles forms effective active centers. The parasitism of Co atoms modulates the adsorption of OH intermediates on Ru active sites, accelerating HOR kinetics through faster formation of *H 2 O. As anticipated, Co 1 Ru 1,n /rGO exhibits ultrahigh mass activity (7.68 A mg Ru −1 ) at 50 mV and exchange current density (0.68 mA cm −2 ), which are 6 and 7 times higher than those of Ru/rGO, respectively. Notably, it also displays exceptional durability surpassing that of commercial Pt catalysts. This investigation provides valuable insights into hybrid multi‐single‐atom and metal nanoparticle catalysis.
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