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首页> 外文期刊>Scientific reports. >Effect of Bi-functional Hierarchical Flower-like CoS Nanostructure on its Interfacial Charge Transport Kinetics, Magnetic and Electrochemical Behaviors for Supercapacitor and DSSC Applications
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Effect of Bi-functional Hierarchical Flower-like CoS Nanostructure on its Interfacial Charge Transport Kinetics, Magnetic and Electrochemical Behaviors for Supercapacitor and DSSC Applications

机译:双功能分层花状CoS纳米结构对其在超级电容器和DSSC应用中的界面电荷传输动力学,磁和电化学行为的影响

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Metal sulfides are of great interest for future electrode materials in supercapacitor and solar cell applications owing to their superior electrochemical activity and excellent electrical conductivity. With this scope, a binary transition metal sulfide (CoS) is prepared via one-step hydrothermal synthesis. Hexagonal phase of CoS with space group of P63/mmc(194) is confirmed by XRD analysis. Additional cubic Co3S4 phase in the prepared sample originates the mixed valence state of Co (Co2+ and Co3+) is affirmed from XPS analysis. Morphological features are visualized using HRSEM images that shows nanoflower shaped star-anise structure. Employing the prepared CoS as active electrode material, interfacial charge transport kinetics is examined by EIS-Nyquist plot. The supercapacitive performances are tested in two and three-electrode system which exhibited respective specific capacitances of 57?F/g and 348?F/g for 1?A/g. Further, the fabricated asymmetric CoS//AC supercapacitor device delivers an appreciable energy density of 15.58?Wh/kg and power density of 700.12?W/kg with excellent cyclic stability of 97.9% and Coulombic efficiency of 95% over 2000 charge-discharge cycles. In addition, dye-sensitized solar cells are fabricated with CoS counter electrode and the obtained power conversion efficiency of 5.7% is comparable with standard platinum based counter electrode (6.45%). Curie-Weiss plot confirms the transition of paramagnetic nature into ferrimagnetic behavior at 85?K and Pauli-paramagnetic nature at 20?K respectively. Temperature dependent resistivity plot affirms the metallic nature of CoS sample till 20?K and transition to semiconducting nature occurs at 20?K owing to Peierl’s transition effect.
机译:金属硫化物由于其优异的电化学活性和出色的导电性,因此对于超级电容器和太阳能电池应用中的未来电极材料非常感兴趣。在此范围内,通过一步水热合成制备了二元过渡金属硫化物(CoS)。 XRD分析证实了CoS的六方相的空间群为P63 / mmc(194)。 XPS分析确定了制备样品中另外的立方Co3S4相导致Co的混合价态(Co2 +和Co3 +)。使用HRSEM图像可以看到形态特征,该图像显示了纳米花状的八角茴香结构。使用制备的CoS作为活性电极材料,通过EIS-奈奎斯特图检查界面电荷传输动力学。在两电极和三电极系统中测试了超级电容性能,它们在1A / g的条件下分别具有57?F / g和348?F / g的比电容。此外,所制造的非对称CoS // AC超级电容器器件在2000次充放电循环中提供了15.58?Wh / kg的可观能量密度和700.12?W / kg的功率密度,具有97.9%的出色循环稳定性和95%的库仑效率。 。另外,用CoS对电极制造染料敏化太阳能电池,并且获得的5.7%的功率转换效率与标准的铂基对电极(6.45%)相当。居里-魏斯曲线证实了顺磁性质分别在85?K处转变为亚铁磁行为,而在20?K处则是保利顺磁性质。温度相关的电阻率图确认了CoS样品的金属特性直到20?K,并且由于Peierl的跃迁效应,在<20?K时发生了过渡到半导体特性。

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