双功能
催化作用
析氧
克拉克电极
材料科学
镍
氧气
钴
无机化学
化学
电极
电化学
电解质
有机化学
物理化学
作者
Xiaofei Gong,Haihong Zhong,Luis Alberto Estudillo‐Wong,Nicolás Alonso‐Vante,Fengrui Sun,Dianqing Li
标识
DOI:10.1016/j.jechem.2022.07.039
摘要
The intercalated layered double hydroxides provide a promising template to design and fabricate oxygen electrode catalysts with bifunctional high-performance. Bimetallic cobalt–nickel sulfide nanoparticles anchored on S-, N-codoped holey carbon nanosheets (CoNi-S- T @NCFs) with a hydrangea-like morphology, were synthesized via a confinement synthesis route, in which an intercalated LDH precursor was subjected to the interlayer-confined carbonization and host-layer sulfurization. The phase transformation and structure evolution (e.g., atom site occupancy, crystallite size, and cell volume) of the CoNi-S- T @NCFs electrocatalysts, as a function of sulfurization temperatures, were confirmed by X-ray diffraction and Rietveld analyses. The sulfur vacancies effectively enhance the electrocatalytic activity, while the synergistic effect of (Co,Ni) 7 S 8 alloy and S, N-codoped carbon matrix facilitates the electron transfer and accelerates reaction kinetics, making CoNi-S-900@NCFs an efficient and stable bifunctional electrocatalyst for oxygen reduction reaction (ORR). The rich high-valence Co (III) and Ni (III) of CoNi-S-900@NCFs facilitates the in - situ transformation of the metal (oxy)hydroxides intermediates with high catalytic activity for oxygen evolution reaction (OER). Thus, with a bifunctional parameter, Δ E, of 0.75 V ( E j =10, OER - E 1/2, ORR ), this electrocatalyst slightly outperforms the state-of-the-art commercial Pt/C + RuO 2 /C catalyst (Δ E = 0.76 V) in alkaline medium. This work demonstrates the influence that the sulfurization temperature has on the relationship between the structure and electrocatalytic performance of bimetallic sulfides prepared by the synthesis strategy using the intercalated LDH precursor. This strategy can be extended to prepare other chalcogenides with binary or ternary transition metals.
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