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首页> 外文期刊>ACS Sustainable Chemistry & Engineering >Space-Confined Synthesis of Lasagna-like N-Doped Graphene-Wrapped Copper-Cobalt Sulfides as Efficient and Durable Electrocatalysts for Oxygen Reduction and Oxygen Evolution Reactions
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Space-Confined Synthesis of Lasagna-like N-Doped Graphene-Wrapped Copper-Cobalt Sulfides as Efficient and Durable Electrocatalysts for Oxygen Reduction and Oxygen Evolution Reactions

机译:空间局限性合成烤宽面条状N掺杂石墨烯包裹的铜 - 钴硫化物,为氧还原和氧气进化反应的有效和耐用的电催化剂

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摘要

Searching for efficient and economical bifunctional oxygen electrocatalysts is urgent for exploring sustainable energy technologies. Herein, the unique lasagna-like structured copper-cobalt sulfides wrapped with N-doped reduced graphene oxide (CuCoS/N-rGO) were first fabricated through in situ controllable growth of bimetallic metal-organic frameworks (CuCo-BTC) on GO followed by further pyrolysis and sulfuration. The interconnected structure was formed because the bimetallic ions and carboxyl groups in the CuCo-BTC precursor combine with the functional groups (-COOH, -OH, etc.) on the surface of GO to interconnect the graphene sheets to avoid agglomeration of subsequent pyrolysis. In turn, the carbonized graphene was used as a space-constrained reactor to wrap CuCoS particles to prevent their aggregation and the electronic distribution changed between them to produce an excellent synergistic effect. In the exploration of the molar ratios of bimetallic ions, the optimal CuCoS-4/N-rGO with n(Co)/n(Cu) of 4:1 possessed a unique structure, a larger specific surface area (150 m(2) g(-1)), and splendid electrocatalytic activity, with the highest onset potential of 0.97 V (vs reversible hydrogen electrode, RHE), the largest limiting current density of 5.2 mA cm(-), outstanding durability toward the oxygen reduction reaction, and the smallest overpotential of 288 mV (vs RHE) at 10 mA cm(-2) toward the oxygen evolution reaction. Furthermore, lasagna-like CuCoS-4/N-rGO also showed satisfactory power density (143.2 mW cm(-2)) and prominent rechargeable ability compared with Pt/C when assembled in Zn-air batteries.
机译:寻找高效且经济的双功能氧气电催化剂是探索可持续能源技术的迫切迫切。在此,首先通过原位可控生长(Cuco-BTC)的原位可控增长,首先通过双金属 - 有机框架(Cuco-BTC)进行缠在一起的独特的烤丝肌铜 - 钴硫化物。进一步热解和硫化。形成互连的结构,因为Cuco-BTC前体中的双金属离子和羧基与官能团(-COOH,-OH等)组合,以互连石墨烯片,以避免随后的热解的附聚。反过来,碳化的石墨烯用作空间约束反应器,以包裹Cucos颗粒以防止它们的聚集,并且电子分布在它们之间发生变化以产生出色的协同效应。在探索双金属离子的摩尔比中,具有4:1的N(CO)/ N(Cu)的最佳Cucos-4 / N-Rgo具有独特的结构,较大的比表面积(150μm(2) G(1))和卓越的电催化活性,具有0.97V(VS可逆氢电极,RHE)的最高发病潜力,最大限制电流密度为5.2 mA cm( - ),较高的耐​​氧反应耐见性,和在10 mA cm(-2)的最小过电位为10 mA cm(-2)朝向氧气进化反应。此外,与在Zn-Air电池组装时,烤丝肌样CUCOS-4 / N-RGO也显示出令人满意的功率密度(143.2mm(-2))和与PT / C相比的可充电能力。

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