The oxygen evolution reaction is of great significance to the production of hydrogen from high efficiency electrolytic water, hydrogen oxygen fuel cell and other energy conversion devices, but there are many challenges such as high cost, low efficiency and poor stability of catalysts. Among non-precious metal catalysts, oxide has its unique advantages. We used overdoping strategy to prepare two-phase oxide electrocatalyst SrCo Fe Mo O (SCFM ) containing double perovskite and Co O with excellent OER electrocatalytic activity and stability in alkaline solution. It required an overpotential of 361.7 mV to reach a 10 mA cm current density and its performance only degrades by 3.48% after 1000 CV cycles accelerated stability tests, whose electrochemical performance is superior to that of single-phase double perovskites and undoped perovskites. SrCo Fe O (SCF) ordinary perovskite is doped with slightly molybdenum (Mo), and then the ordinary perovskite turns into double perovskite because of the polyvalence characteristics of Mo. When Mo is overdoped, Co O phase was precipitated while Mo entered perovskite phase. This process causes lattice distortion and makes the surface electronic structure benign changes. Furthermore, the microscopic morphology of the material surface and the valence state of cobalt element are changed, thereby improving the microenvironment of the electrochemical process.
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http://dx.doi.org/10.1002/asia.202200127 | DOI Listing |
Chem Asian J
June 2022
State Key Laboratory of Advanced Special Steel & Shanghai Key Laboratory of Advanced Ferrometallurgy & College of Materials Science and Engineering, Shanghai University, Shanghai, 200444, P. R. China.
The oxygen evolution reaction is of great significance to the production of hydrogen from high efficiency electrolytic water, hydrogen oxygen fuel cell and other energy conversion devices, but there are many challenges such as high cost, low efficiency and poor stability of catalysts. Among non-precious metal catalysts, oxide has its unique advantages. We used overdoping strategy to prepare two-phase oxide electrocatalyst SrCo Fe Mo O (SCFM ) containing double perovskite and Co O with excellent OER electrocatalytic activity and stability in alkaline solution.
View Article and Find Full Text PDFNanotechnology
July 2022
State Key Laboratory of Separation Membranes and Membrane Processes, Tiangong University, No. 399 Binshui West Road, Tianjin 300387, People's Republic of China.
S-doped Fe/Ni oxide and Fe/Ni hydride oxide catalysts exhibit good oxygen evolution reaction (OER) performance. Nevertheless, the over-doping of S and the agglomeration of active sites still hinder the improvement of the performance of these catalysts. The S/O ratio regulation can optimize the electronic structure effectively so as to improve the OER performance of the catalysts, but few studies have focused on this study.
View Article and Find Full Text PDFProc Natl Acad Sci U S A
May 2017
Laboratory for Materials and Structures, Tokyo Institute of Technology, Yokohama 226-8503, Japan;
In iron-based superconductors, high critical temperature () superconductivity over 50 K has only been accomplished in electron-doped FeAsO ( is heavy rare earth () element). Although FeAsO has the highest bulk (58 K), progress in understanding its physical properties has been relatively slow due to difficulties in achieving high-concentration electron doping and carrying out neutron experiments. Here, we present a systematic neutron powder diffraction study of SmFeAsO D , and the discovery of a long-range antiferromagnetic ordering with ≥ 0.
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