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Hollow Fluffy Co3O4 Cages as Efficient Electroactive Materials for Supercapacitors and Oxygen Evolution Reaction

机译:空心蓬松的Co3O4笼用作超级电容器和氧气析出反应的高效电活性材料

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摘要

Nano-/micrometer multiscale hierarchical structures not only provide large surface areas for surface redox reactions but also ensure efficient charge conductivity, which is of benefit for utilization in areas of electrochemical energy conversion and storage. Herein, hollow fluffy cages (HFC) of Co3O4, constructed of ultrathin nanosheets, were synthesized by the formation of Co(OH)(2) hollow cages and subsequent calcination at 250 degrees C. The large surface area (245.5 m(2) g(-1)) of HFC Co3O4 annealed at 250 degrees C ensures the efficient interaction between electrolytes and electroactive components and provides more active sites for the surface redox reactions. The hierarchical structures minimize amount of the grain boundaries and facilitate the charge transfer process. Thin thickness of nanosheets CO, (2-3 nm) ensures the highly active sites for the surface redox reactions. As a consequence, HFC Co3O4 as the supercapacitor electrode exhibits a superior rate capability, shows an excellent cydiability of 10 000 cycles at 10 A g(-1), and delivers large specific capacitances of 948.9 and 536.8 F g(-1) at 1 and 40 A g(-1), respectively. Catalytic studies of HFC Co3O4 for oxygen evolution reaction display a much higher turnover frequency of 1.67 x 10(-2) s(-1) in pH 14.0 KOH electrolyte at 400 mV overpotential and a lower Tafel slope of 70 mV dec(-1). HFC Co3O4 with the efficient electrochemical activity and good stability can remain a promising candidate for the electrochemical energy conversion and storage.
机译:纳米/微米多尺度分层结构不仅为表面氧化还原反应提供了较大的表面积,而且还确保了有效的电荷传导性,这有利于在电化学能量转换和存储领域中的利用。在此,通过形成Co(OH)(2)空心笼子并随后在250摄氏度下煅烧,合成了由超薄纳米片构成的Co3O4空心蓬松笼子(HFC)。大表面积(245.5 m(2)g (-1)在250摄氏度下退火的HFC Co3O4确保电解质与电活性成分之间的有效相互作用,并为表面氧化还原反应提供更多的活性位点。分层结构使晶界的数量最小化,并促进了电荷转移过程。纳米片CO的薄厚度(2-3 nm)确保了表面氧化还原反应的高活性位。结果,作为超级电容器电极的HFC Co3O4表现出优异的倍率能力,在10 A g(-1)时表现出出色的10000次循环的电导率,在1 A时提供948.9和536.8 F g(-1)的大比电容。和40 A g(-1)分别。 HFC Co3O4催化氧释放反应的催化研究显示,在pH 14.0 KOH电解质中,在400 mV超电势下,更高的转换频率为1.67 x 10(-2)s(-1),较低的Tafel斜率为70 mV dec(-1) 。具有高效电化学活性和良好稳定性的HFC Co3O4仍然是电化学能量转换和存储的有希望的候选者。

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