纳米笼
析氧
材料科学
塔菲尔方程
过电位
化学工程
分解水
层状双氢氧化物
氢氧化物
催化作用
制作
过渡金属
双金属片
阳极
纳米技术
氧气
电流密度
电催化剂
动力学
次磷酸
纳米结构
纳米针
络腮胡子
磷化物
电极
作者
Jiangang Li,Huachuan Sun,Lin Lv,Zhishan Li,Xiang Ao,Chenhui Xu,Yi Li,Chundong Wang
标识
DOI:10.1021/acsami.8b22133
摘要
High-efficient electrocatalysts are crucial for fuel cell applications; however, the whole cell performance is generally restricted by the anodic part because of the sluggish kinetics involved in the oxygen evolution reaction (OER) process. Herein, a hierarchical hollow (Co,Ni)Se2@NiFe layered double hydroxide (LDH) nanocage was synthesized by deriving from the metal-organic framework (MOF) of ZIF-67. Concretely, it involves first fabrication of hollow rhombic (Co,Ni)Se2 nanocages and then deposition of NiFe LDH nanosheets on the surface of nanocages. Notably, the incorporation of Ni into Co-based ZIF-67 (via ion-exchange) could tail the atomic arrangement of the MOF, exposing more additional active sites in the following selenization treatment. The as-synthesized (Co,Ni)Se2@NiFe LDH demonstrates splendid OER performance with a small overpotential of 277 mV (to launch a current density of 10 mA cm-2), a small Tafel slope of 75 mV dec-1, and robust durability (a slight stability decay of 5.1% after 17 h of continuous test), not only surpassing the commercial RuO2 but also being comparable/superior to most reported nonprevious metal-based catalysts. Upon analysis, the outstanding OER performance is attributed to the optimized adsorption/desorption nature of iron and nickel/cobalt toward the oxygenated species and partial delocalization of spin status at the interface via the bridging O2-. This work represents a solid step toward exploration of advanced catalysts with deliberate experimental design and/or atom tailoring.
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