| Literature DB >> 29436029 |
Changrong Zhu1,2, An-Liang Wang3, Wen Xiao4, Dongliang Chao1, Xiao Zhang3, Nguyen Huy Tiep1, Shi Chen1, Jiani Kang1, Xin Wang2, Jun Ding4, John Wang4, Hua Zhang3, Hong Jin Fan1.
Abstract
Electrocatalytic performance can be enhanced by engineering a purposely designed nanoheterojunction and fine-tuning the interface electronic structure. Herein a new approach of developing atomic epitaxial in-growth in Co-Ni3 N nanowires array is devised, where a nanoconfinement effect is reinforced at the interface. The Co-Ni3 N heterostructure array is formed by thermal annealing NiCo2 O4 precursor nanowires under an optimized condition, during which the nanowire morphology is retained. The epitaxial in-growth structure of Co-Ni3 N at nanometer scale facilitates the electron transfer between the two different domains at the epitaxial interface, leading to a significant enhancement in catalytic activities for both hydrogen and oxygen evolution reactions (10 and 16 times higher in the respective turn-over frequency compared to Ni3 N-alone nanorods). The interface transfer effect is verified by electronic binding energy shift and density functional theory (DFT) calculations. This nanoconfinement effect occurring during in situ atomic epitaxial in-growth of the two compatible materials shows an effective pathway toward high-performance electrocatalysis and energy storages.Entities:
Keywords: epitaxial in-growth; hydrogen evolution reaction; metal nitride arrays; nanoconfinement; oxygen evolution reaction
Year: 2018 PMID: 29436029 DOI: 10.1002/adma.201705516
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849