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首页> 外文期刊>Electrochimica Acta >Honeycombed-like nanosheet array composite NiCo2O4/rGO for efficient methanol electrooxidation and supercapacitors
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Honeycombed-like nanosheet array composite NiCo2O4/rGO for efficient methanol electrooxidation and supercapacitors

机译:蜂窝状纳米片阵列复合NiCO2O4 / RGO用于高效甲醇电氧化和超级电容器

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A series of novel honeycombed-like composites NiCo2O4/rGO-T (rGO: reduced graphene oxide, T: 200, 250 and 300 degrees C) were obtained by a pre-adjusted pH value aq. phase coprecipitation strategy assisted by citric acid, followed annealing in N-2 flow. The NiCo2O4/rGO-250 shows the most uniformly highly-ordered honeycombed-like nanosheet array morphology consisting of ultrathin mesoporous nanosheets (similar to 110 nm x 12 nm) interdigitated vertically grown on the rGO surface in both sides with the highest crystallinity, higher surface area (145 m(2) g(-1)), bimodal pore size distribution (3.4 and 12.5 nm) along with the highly open macroporous networks. The NiCo2O4/rGO-250 electrode exhibits the highest current density for methanol oxidation reaction of 90 A g(-1) at 0.6 V, as well as high cycling stability (94% after 500 cycles, returned to 98% with fresh electrolyte), which is the best one so far among reported catalysts with similar compositions. Simultaneously, NiCo2O4/rGO-250 electrode exhibits considerable specific capacitance of 1380 F g(-1) at 1 A g(-1), high rate performance (10 A g(-1), 967 F g(-1)), and good cycling stability which remains 90% at 5 A g(-1) after 1000 charge-discharge cycles for supercapacitor. The excellent electrochemical performance of the NiCo2O4/rGO-250 electrode can be attributed to the highly-ordered honeycombed-like mesoporous nanosheet array along with the greatly increased specific surface area exposing more active sites, the highly open macroporous networks formed by adjacent ultrathin NiCo2O4 nanosheets providing more ion/electron diffusion paths and effective contact area of electrolyte, and the strong NiCo2O4- rGO synergy endowing excellent conductivity and structural robustness, thus greatly facilitate the transfer of electrons and ions in electrode and at the electrolyte/electrode interface. (C) 2020 Elsevier Ltd. All rights reserved.
机译:通过预调节的pH值aq获得一系列新型蜂窝状的复合材料Nico2O4 / Rgo-T(RGO:石墨烯氧化物,T:200,250和300℃)。通过柠檬酸辅助的相结合策略,遵循N-2流量的退火。 Nico2O4 / Rgo-250显示最均匀的高度有序的蜂窝状纳米片形态阵列形态,包括在具有最高结晶度的rgo表面上垂直生长的超薄介孔纳米片(类似于110nm×12nm)垂直生长面积(145米(2)克(-1)),双峰孔径分布(3.4和12.5nm)以及高度开放的大孔网络。 NicO 2 O 4 / Rgo-250电极在0.6V下显示出90 A G(-1)的甲醇氧化反应的最高电流密度,以及高循环稳定性(500次循环后94%,用新电解质返回98%),这是迄今为止具有相似组合物的催化剂的最佳选择。同时,NicO2O4 / RGO-250电极在1Ag(-1),高速率性能(10ag(-1),967f(-1))中表现出相当大的1380 f g(-1)的比电容,在超级电容器1000个电荷 - 放电循环后,良好的循环稳定性在1000℃下保持90%,5Ag(-1)。 NicO2O4 / RGO-250电极的优异电化学性能可以归因于高度有序的蜂窝状介孔纳米阵列,以及大大增加的比表面积暴露更多的活性位点,由相邻的超薄NiCO2O4纳米液形成的高开越巨孔网络提供更多的离子/电子扩散路径和电解质的有效接触面积,并且具有赋予优异的导电性和结构稳健性的强NiCO2O4- RGO协同作用,从而大大促进了电极中的电子和离子和电解质/电极界面的转移。 (c)2020 elestvier有限公司保留所有权利。

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