| Literature DB >> 28745889 |
Chongyi Ling1, Li Shi1, Yixin Ouyang1, Xiao Cheng Zeng2,3, Jinlan Wang1,4.
Abstract
Nanosheet supported single-atom catalysts (SACs) can make full use of metal atoms and yet entail high selectivity and activity, and bifunctional catalysts can enable higher performance while lowering the cost than two separate unifunctional catalysts. Supported single-atom bifunctional catalysts are therefore of great economic interest and scientific importance. Here, on the basis of first-principles computations, we report a design of the first single-atom bifunctional eletrocatalyst, namely, isolated nickel atom supported on β12 boron monolayer (Ni1/β12-BM), to achieve overall water splitting. This nanosheet supported SAC exhibits remarkable electrocatalytic performance with the computed overpotential for oxygen/hydrogen evolution reaction being just 0.40/0.06 V. The ab initio molecular dynamics simulation shows that the SAC can survive up to 800 K elevated temperature, while enacting a high energy barrier of 1.68 eV to prevent isolated Ni atoms from clustering. A viable experimental route for the synthesis of Ni1/β12-BM SAC is demonstrated from computer simulation. The desired nanosheet supported single-atom bifunctional catalysts not only show great potential for achieving overall water splitting but also offer cost-effective opportunities for advancing clean energy technology.Entities:
Keywords: Boron monolayer; bifunctional catalyst; electrochemical water splitting; single atom catalyst
Year: 2017 PMID: 28745889 DOI: 10.1021/acs.nanolett.7b02518
Source DB: PubMed Journal: Nano Lett ISSN: 1530-6984 Impact factor: 11.189