Min Chang Kim , Ghuzanfar Saeed , Asrar Alam , Youngjoong Choi , Liguo Zhang , Damin Lee , Se Hun Kwon , Sanjay Mathur , Kwang Ho Kim
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The Sn-Co-S/MXene hybrid material has displayed excellent electrochemical performance with an ultrahigh specific capacity of 305.71 mA h gm<sup>−1</sup> at 1 A g<sup>−1</sup> and capacity retention of 94.8% after 10, 000 charge–discharge cycles. The Sn-Co-S/MXene hybrid material of high electrochemical performance has improved charge transfer kinetics during the charge–discharge process, due to the synergistic coupling effect between ultrafine Sn-Co-S nanoparticles and MXene sheets. Furthermore, the Sn-Co-S/MXene//activated carbon (AC) asymmetric supercapacitor (ASC) device has been configured with the assistance of Sn-Co-S/MXene as cathode and AC as anode materials. The Sn-Co-S/MXene//AC ASC device exhibits a stable potential window of 1.7 V, a high specific capacitance of 108.50F g<sup>−1</sup> at 1 A g<sup>−1</sup>, and an energy density of 43.55Wh kg<sup>−1</sup> at a power density of 0.83 kW kg<sup>−1</sup>. 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引用次数: 6
摘要
为了提高超级电容器的电化学性能和稳定的几何结构而设计电极材料是开发超级电容器电化学性能的有效研究。然而,想要设计出具有优异导电性和优越比容量的新型复合材料,却面临着成本低、合成工艺简单的难题。本文首次将带正电荷的超细Sn-Co-S纳米粒子(NPs)与带负电荷的二维Ti3C2Tx (MXene)片通过静电相互作用结合,通过电化学组装制备了稳定的Sn-Co-S/MXene杂化材料。Sn-Co-S/MXene杂化材料表现出优异的电化学性能,在1 A g−1条件下具有305.71 mA h gm−1的超高比容量,在10000次充放电循环后容量保持率为94.8%。由于超细Sn-Co-S纳米粒子与MXene薄片之间的协同耦合作用,使得具有高电化学性能的Sn-Co-S/MXene杂化材料在充放电过程中改善了电荷转移动力学。在此基础上,以Sn-Co-S/MXene为正极材料,以AC为负极材料,构建了Sn-Co-S/MXene//活性炭(AC)非对称超级电容器(ASC)器件。Sn-Co-S/MXene//AC ASC器件具有1.7 V的稳定电位窗口,在1 a g−1时具有108.50F g−1的高比电容,在0.83 kW kg−1的功率密度下具有43.55Wh kg−1的能量密度。本研究验证了高电活性Sn-Co-S/MXene杂化电极材料在超稳定非对称超级电容器中的设计和应用。
Ultrafine nanoparticles of tin-cobalt-sulfide decorated over 2D MXene sheets as a cathode material for high-performance asymmetric supercapacitor
The design of electrode materials for improved electrochemical properties and stable geometric configuration is known as effective research in developing the electrochemical capability of supercapacitors (SCs). However, there is a difficulty in designing innovative composite material with excellent electrical conductivity and superior specific capacity by way of low cost and easy synthesis process. Herein, for the first time, a stable Sn-Co-S/MXene hybrid material is fabricated through the electrochemical assembly by combining positively charged ultrafine Sn-Co-S nanoparticles (NPs) and negatively charged 2D Ti3C2Tx (MXene) sheets due to electrostatic interaction. The Sn-Co-S/MXene hybrid material has displayed excellent electrochemical performance with an ultrahigh specific capacity of 305.71 mA h gm−1 at 1 A g−1 and capacity retention of 94.8% after 10, 000 charge–discharge cycles. The Sn-Co-S/MXene hybrid material of high electrochemical performance has improved charge transfer kinetics during the charge–discharge process, due to the synergistic coupling effect between ultrafine Sn-Co-S nanoparticles and MXene sheets. Furthermore, the Sn-Co-S/MXene//activated carbon (AC) asymmetric supercapacitor (ASC) device has been configured with the assistance of Sn-Co-S/MXene as cathode and AC as anode materials. The Sn-Co-S/MXene//AC ASC device exhibits a stable potential window of 1.7 V, a high specific capacitance of 108.50F g−1 at 1 A g−1, and an energy density of 43.55Wh kg−1 at a power density of 0.83 kW kg−1. This study validates the design and application of highly electroactive Sn-Co-S/MXene hybrid electrode material for ultrastable asymmetric supercapacitors.
期刊介绍:
Journal of Industrial and Engineering Chemistry is published monthly in English by the Korean Society of Industrial and Engineering Chemistry. JIEC brings together multidisciplinary interests in one journal and is to disseminate information on all aspects of research and development in industrial and engineering chemistry. Contributions in the form of research articles, short communications, notes and reviews are considered for publication. The editors welcome original contributions that have not been and are not to be published elsewhere. Instruction to authors and a manuscript submissions form are printed at the end of each issue. Bulk reprints of individual articles can be ordered. This publication is partially supported by Korea Research Foundation and the Korean Federation of Science and Technology Societies.