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首页> 外文期刊>Catalysis science & technology >Hierarchical Co3O4 nanorods anchored on nitrogen doped reduced graphene oxide: a highly efficient bifunctional electrocatalyst for rechargeable Zn-air batteries
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Hierarchical Co3O4 nanorods anchored on nitrogen doped reduced graphene oxide: a highly efficient bifunctional electrocatalyst for rechargeable Zn-air batteries

机译:分层Co3O4纳米棒固定在氮掺杂了石墨烯氧化物:一种高效双官能electrocatalyst为可充电Zn-air电池

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摘要

Zn-air batteries are amongst the most promising energy storage technologies due to high theoretical energy density for which their practical application is tied to development of low-cost, effective bifunctional catalysts. Herein, a highly efficient bifunctional electrocatalyst was synthesized by hybridizing hierarchical spinel Co3O4 nano-rods with N-rGO. A rational design of the nano-hybrid was realized through optimizing catalytic activity of the pure Co3O4 NRs followed by their grafting onto N-rGO nanosheets. The optimized hybrid (N-rGO/Co3O4 NRs) showed an excellent bifunctional (ORR/OER) catalytic activity with Delta E = E-j=10 - E-1/2 as small as 0.78 V, outperforming state-of-the-art noble-metal catalysts (e.g. PtRuC). Rechargeable Zn-air batteries assembled with a N-rGO/Co3O4 NRs hybrid delivered a specific capacity of 875 mA h g(Zn)(-1) (corresponding to an exceptional energy density of 1115 W h kg(Zn)(-1)), a peak power density of 47 mW cm(-2) and a stable cycling stability compared to Zn-air batteries based on PtRuC commercial catalyst. Outstanding electrochemical performance of the hybrid ORR/OER catalyst is credited to the hierarchical nature of Co3O4 NRs, optimized Co3+/Co2+ ratio, particle agglomeration prevention and superior electrical conductivity resulting from the hybridization with N-rGO. Rational design of atomic-scale interfaces in the spinel metal oxide-carbon hybrid structures demonstrated here provides new insights for the designing and fabrication of high-performance bifunctional non-precious electrocatalysts for rechargeable Zn-air batteries.
机译:Zn-air电池是最有前途的由于高能源储存技术他们的理论能量密度实际应用与发展低成本、高效的双功能催化剂。在此,一个高效的双官能electrocatalyst被组合合成分层的尖晶石Co3O4 nano-rods N-rGO。设计合理的nano-hybrid实现通过优化催化活性的纯洁Co3O4关系,其次是嫁接到N-rGOnanosheets。NRs)显示一个优秀的双官能(奥尔/ OER)催化活性与δE = E-j = 10 - E-1/2小至0.78 V,超越先进的贵金属催化剂(如。PtRuC)。N-rGO / Co3O4 NRs混合了具体的容量875毫安h g(锌)(1)(对应于一个特殊的能量密度1115 W h公斤(锌)(1)),峰值功率密度47个兆瓦cm(2)和一个稳定的循环稳定性相比基于PtRuC Zn-air电池商业的催化剂。混合奥尔/ OER催化剂的性能归功于Co3O4 NRs,层次的本质优化二氧化碳Co2 + / +比率,粒子聚集预防和优异的导电性造成N-rGO杂交。理性的量子接口的设计尖晶石金属oxide-carbon混合结构这里提供了新的见解设计和制造高性能双官能non-precious electrocatalysts为充电Zn-air电池。

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