4.7 Article

In-situ transformation to accordion-like core-shell structured metal@metallic hydroxide nanosheet from nanorod morphology for overall water-splitting in alkaline media

期刊

JOURNAL OF COLLOID AND INTERFACE SCIENCE
卷 559, 期 -, 页码 105-114

出版社

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jcis.2019.09.104

关键词

Accordion-like structure; Core-shell; Water-splitting; Alkaline media

资金

  1. Taishan Scholar Program of Shandong Province, China [ts201712045]
  2. Key Research and Development Program of Shandong Province [2018GGX104001]
  3. Natural Science Foundation of Shandong Province of China [ZR2017MB054, ZR2019BB002]
  4. Doctoral Found of QUST [0100229001, 010022873]

向作者/读者索取更多资源

Exploring highly-efficient, low-cost and earth-abundant bi-functional electrocatalysts for hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) have a key role in economical overall water-splitting. Herein, a facile and general route is developed to prepare various non-noble metal-based electrocatalysts via NH3 center dot H2O treatment (NT) on Ni foam (NF) (M-NT/NF, M = Co, Ni, Fe, Mn, Cu). The morphology and compositions of the obtained catalysts could be tuned via solvothermal process with NH3 center dot H2O, and then optimizing the active sites exposure and effectively change the reaction kinetics of the electrocatalytic reaction. Moreover, the substrate of Ni foam is in favor of electrolyte transfer and release of produced gases. Then, the obtain Co-NT/NF, composed of metallic Co and Co(OH)(2), exhibits excellent catalytic performance for HER with low overpotential of 178 mV@10 mA cm(-2) and small Tafel slope of 75 mV dec(-1), which is rarely reported for HER. For OER, only a low overpotential of 226 mV is required to deliver 10 mA cm(-2) with a small Tafel slope of 46 mV dec(-1). Moreover, the reported electrocatalysts present negligible current density loss during long-term stability measurement, demonstrating robust nanostructure feature of the prepared catalysts. This work opens a facile and efficient avenue to design bi-funtional electrocatalyst coupling with outstanding catalytic performance. (C) 2019 Elsevier Inc. All rights reserved.

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