4.6 Article

One-step solid-phase boronation to fabricate self-supported porous FeNiB/FeNi foam for efficient electrocatalytic oxygen evolution and overall water splitting

期刊

JOURNAL OF MATERIALS CHEMISTRY A
卷 7, 期 33, 页码 19554-19564

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/c9ta04076e

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资金

  1. National Natural Science Foundation of China [21878201]
  2. Natural Science Foundation of Shanxi Province [201801D121059]
  3. Program for the Outstanding Innovative Teams of Higher Learning Institutions of Shanxi OIT
  4. Training Program of the Top Disciplines Excellent Youth Scholars of the Taiyuan University of Technology [SC18100330]
  5. Program for the Shanxi Key Laboratory of Gas Energy Efficient and Clean Utilization [201705D111002]
  6. Fund Program for the Scientific Activities of Selected Returned Overseas Professionals in Shanxi Province [RZ18100353]
  7. Shanxi Scholarship Council of China [2017-034]

向作者/读者索取更多资源

Development of cost-effective and efficient oxygen-evolution electrocatalysts is urgently required for exploring renewable hydrogen energy and realizing large scale water splitting. In this work, self-supported FeNi@FeNiB-700 has been developed by a facile and environment-friendly solid-phase boronizing process, and it exhibits excellent catalytic activity toward the OER. It requires overpotentials of 272 mV (eta(10)) and 399 mV (eta(100)) to deliver oxygen-evolution current densities of 10 and 100 mA cm(-2), respectively, outperforming many previously reported catalysts such as NiCo LDH nanosheets, Ni3S2/NF leaves, CoSe2 NS@CP, etc. The impressive electrocatalytic performance is attributed to the formation of loose and porous bi-metal borides on the surface of the electrode, which guarantees enhanced active surface area and rapid charge/mass transfer. Moreover, the optimum pair of porous Ni-P foam (cathode) || FeNi@FeNiB-700 (anode) in a two-electrode alkaline water electrolyzer also possesses high durability and only requires a cell voltage of 1.65 V to deliver 10 mA cm(-2). This study allows for large-scale application of cheap and efficient 3D bi-metal boride electrocatalysts for the oxygen evolution reaction and overall water splitting.

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