Xiaodong Chen, Zhi Cheng, Jiao Li, Hongyu Chen, Siyuan Liu, Shuxian Wei, Zhaojie Wang and Xiaoqing Lu
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引用次数: 0
摘要
具有高活性的非贵重过渡金属基电催化剂是取代铂基或钌基电催化剂的有希望的析氢催化剂。在本研究中,我们提出了一种将非晶NiCoP和结晶Co2P (a-NiCoP/Co2P@NF)结合在一起的核壳工程,该工程只需要26 mV的超低过电位就可以实现10 mA cm-2的基准电流密度。此外,它实现了工业级的析氢电流密度为500 mA cm-2,具有优异的稳定性。优异的催化性能和稳定性可归因于分层非晶/晶界面和富电子界面Co位。无定形NiCoP外壳不仅可以保护内部的Co2P不受腐蚀,而且可以提供更大的电化学活性区域。Co2P核共同提供了快速的电子传递,并促进H2从界面富电子的Co位发射。这一工作为非晶与结晶之间的高级核壳结构的合理设计提供了启示。
Achieving advanced hydrogen evolution under large current density using an amorphous/crystalline core–shell electrocatalyst of a-NiCoP/Co2P†
Non-precious transition metal-based electrocatalysts with high activities are promising candidates for substituting Pt- or Ru-based electrocatalysts in hydrogen evolution. In this study, we propose core–shell engineering to combine the amorphous NiCoP and crystalline Co2P (a-NiCoP/Co2P@NF), which requires an ultra-low overpotential of only 26 mV to achieve the benchmark current density of 10 mA cm−2. Furthermore, it achieves an industrial-level hydrogen evolution current density of 500 mA cm−2 with excellent stability. The superior catalytic performance and stability can be attributed to the hierarchical amorphous/crystalline interface and the electron-rich interfacial Co sites. The amorphous NiCoP shell can not only protect the internal Co2P from corrosion, but also provide a larger electrochemically active area. Together, the Co2P core provides fast electron transport and promotes H2 emission from the interfacial electron-rich Co sites. This work provides inspiration to the rational design of an advanced core–shell structure between amorphous and crystalline states.
期刊介绍:
Dalton Transactions is a journal for all areas of inorganic chemistry, which encompasses the organometallic, bioinorganic and materials chemistry of the elements, with applications including synthesis, catalysis, energy conversion/storage, electrical devices and medicine. Dalton Transactions welcomes high-quality, original submissions in all of these areas and more, where the advancement of knowledge in inorganic chemistry is significant.