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首页> 外文期刊>Electrochimica Acta >Electrodeposition of cedar leaf-like graphene Oxide@Ni-Cu@Ni foam electrode as a highly efficient and ultra-stable catalyst for hydrogen evolution reaction
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Electrodeposition of cedar leaf-like graphene Oxide@Ni-Cu@Ni foam electrode as a highly efficient and ultra-stable catalyst for hydrogen evolution reaction

机译:雪松叶状氧化丁烷氧化物的电沉积为Ni-Cu @ Ni泡沫电极作为高效和超稳定的氢气进化反应催化剂

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Cedar leaf-like graphene Oxide@Nickel-Copper@Nickel foam (GO@Ni-Cu@NF) electrode is synthesized through an electrochemical approach and its electrocatalytic activity towards hydrogen production in a 1.0 M KOH medium is thoroughly investigated. Morphology, phase structure, and chemical state of fabricated electrodes are carefully studied. Moreover, the electrochemical characterization methods are employed to evaluate the catalytic activity and stability for electrochemical hydrogen production. The electrocatalytic properties of the GO@Ni-Cu@NF sample are promoted for hydrogen evolution reaction (HER), where eta(10), eta(20) and eta(100) were measured at 70, 109, and 214 mV vs. reverse hydrogen electrode, respectively. This significant electroactivity in HER can be ascribed to the modification of GO nanosheets on the cedar leaf-like Ni-Cu@NF electrode. In addition, the GO nanosheets increase the electrochemical surface area of Ni-Cu@NF from 1790 cm(2) to 2585 cm(2) for the GO@Ni-Cu@NF electrodes. Furthermore, the Tafel slope of the GO@Ni-Cu@NF electrode (57 mV dec(-1)) confirms the predominance of Volmer-Heyrovsky mechanism. Overall, this study proposes a three-dimensional Ni-Cu electrode modified by GO nanoplatelets with a proper electroactivity, excellent surface area, and acceptable stability for HER. Published by Elsevier Ltd.
机译:雪松叶状石墨烯氧化物/镍 - 铜@镍泡沫(GO @ Ni-Cu @ NF)电极通过电化学方法合成,并且其在1.0M KOH培养基中的氢气产生的电催化活性被彻底研究。仔细研究了制造电极的形态,相结构和化学状态。此外,采用电化学表征方法评价电化学氢生产的催化活性和稳定性。 Go @ Ni-Cu @ NF样品的电催化特性被促进用于氢进化反应(她),其中ETA(10),ETA(20)和ETA(100)在70,109和214mV Vs上测量。分别反转氢电极。在她的雪松叶片状Ni-Cu @ NF电极上的Go Nanoshe片中的这种显着的电疗力可以归因于南脑蛋白质的纳米电极。此外,GO纳米片可以将Ni-Cu @ NF的电化学表面积从1790cm(2)到2585cm(2)增加到Go @ Ni-Cu @ NF电极。此外,Go @ Ni-Cu @ NF电极(57mV Dec(-1))的Tafel斜率证实了Volmer-Heyrovsky机制的主要职位。总体而言,该研究提出了由Go纳米孔改性的三维Ni-Cu电极,其具有适当的电切断,优异的表面积和她的可接受的稳定性。 elsevier有限公司出版

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