4.7 Article

Designing transition metal alloy nanoparticles embedded hierarchically porous carbon nanosheets as high-efficiency electrocatalysts toward full water splitting

Journal

JOURNAL OF COLLOID AND INTERFACE SCIENCE
Volume 537, Issue -, Pages 280-294

Publisher

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jcis.2018.11.017

Keywords

Hierarchically porous carbon; FeCo alloy; Hydrogen evolution reaction; Oxygen evolution reaction; Full water splitting

Funding

  1. National Natural Science Foundation of China [21605015]
  2. Development Project of Science and Technology of Jilin Province [20170101176JC]
  3. Fundamental Research Funds for the Central Universities [2412017BJ003]
  4. Recruitment Program of Global Youth Experts
  5. Jilin Provincial Department of Education
  6. Northeast Normal University
  7. Kunming University of Science and Technology of introducing talents [1411909417]

Ask authors/readers for more resources

Developing high-efficiency catalysis electrodes towards both HER (hydrogen evolution reaction) and OER (oxygen evolution reaction) is critical to the popularity and practical application of devices for conversion and storage of clean and renewable hydrogen energy by overall water splitting. In this paper, a series of transition metal alloy nanoparticles embedded hierarchically porous carbon nanosheets (denoted as FexCoy@PCNSs) have been successfully designed and synthesized. After optimizing the metallic contents in FexCoy alloy, Fe3Co7@PCNSs displays superior water electrolysis performances compared to other control samples and previously reported non-noble metal catalysts. This advance is mainly due to the synergistic effect of increased carbon edges exposure, abundant accessible active sites, and improved electron/mass transport capability of 3D hierarchically porous architecture. More importantly, when Fe3Co7@PCNSs is applied as both cathode and anode in a two-electrode cell for carrying out the overall water splitting process, it just needs the corresponding cell voltages of 1.667 and 1.707 V to attain the 10 and 20 mA cm(-2) current densities respectively. The synthesis of Fe3Co7@PCNSs confirms the importance of Fe and Co elements in designing catalyst structures. The electrochemical measurements further display the key roles of structural features and metal alloy@C active sites for boosting water splitting performances. (C) 2018 Published by Elsevier Inc.

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