Literature DB >> 31782464

An Fe stabilized metallic phase of NiS2 for the highly efficient oxygen evolution reaction.

Xingyu Ding1, Weiwei Li2, Haipeng Kuang1, Mei Qu1, Meiyan Cui1, Chenhao Zhao1, Dong-Chen Qi3, Freddy E Oropeza4, Kelvin H L Zhang1.   

Abstract

This work reports a fundamental study on the relationship of the electronic structure, catalytic activity and surface reconstruction process of Fe doped NiS2 (FexNi1-xS2) for the oxygen evolution reaction (OER). A combined photoemission and X-ray absorption spectroscopic study reveals that Fe doping introduces more occupied Fe 3d6 states at the top of the valence band and thereby induces a metallic phase. Meanwhile, Fe doping also significantly increases the OER activity and results in much better stability with the optimum found for Fe0.1Ni0.9S2. More importantly, we performed detailed characterization to track the evolution of the structure and composition of the catalysts after different cycles of OER testing. Our results further confirmed that the catalysts gradually transform into amorphous (oxy)hydroxides which are the actual active species for the OER. However, a fast phase transformation in NiS2 is accompanied by a decrease of OER activity, because of the formation of a thick insulating NiOOH layer limiting electron transfer. On the other hand, Fe doping retards the process of transformation, because of a shorter Fe-S bond length (2.259 Å) than Ni-S (2.400 Å), explaining the better electrochemical stability of Fe0.1Ni0.9S2. These results suggest that the formation of a thin surface layer of NiFe (oxy)hydroxide as an active OER catalyst and the remaining Fe0.1Ni0.9S2 as a conductive core for fast electron transfer is the base for the high OER activity of FexNi1-xS2. Our work provides important insight and design principle for metal chalcogenides as highly active OER catalysts.

Entities:  

Year:  2019        PMID: 31782464     DOI: 10.1039/c9nr07832k

Source DB:  PubMed          Journal:  Nanoscale        ISSN: 2040-3364            Impact factor:   7.790


  2 in total

1.  Cu2S Nanoflakes Decorated with NiS Nanoneedles for Enhanced Oxygen Evolution Activity.

Authors:  Le Wang; Mancong Li; Yingxin Lyu; Jiawen Liu; Jimin Du; Dae Joon Kang
Journal:  Micromachines (Basel)       Date:  2022-02-09       Impact factor: 2.891

2.  Materializing efficient methanol oxidation via electron delocalization in nickel hydroxide nanoribbon.

Authors:  Xiaopeng Wang; Shibo Xi; Wee Siang Vincent Lee; Pengru Huang; Peng Cui; Lei Zhao; Weichang Hao; Xinsheng Zhao; Zhenbo Wang; Haijun Wu; Hao Wang; Caozheng Diao; Armando Borgna; Yonghua Du; Zhi Gen Yu; Stephen Pennycook; Junmin Xue
Journal:  Nat Commun       Date:  2020-09-16       Impact factor: 14.919

  2 in total

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