Hierarchical Two-Dimensional Layered Nickel Disulfide (NiS2)@PEDOT:PSS Nanocomposites as Battery-Type Electrodes for Battery-Type Supercapacitors with High Energy Density

S. Thomas, Jayesh Cherusseri, Deepthi N. Rajendran
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Abstract

Battery-type hybrid supercapacitors (HSCs) (otherwise known as supercapatteries) are novel electrochemical energy storage devices bridge the gap between rechargeable batteries and traditional SCs. Herein, we report the synthesis of layered two-dimensional (2D) nickel disulfide (NiS2) nanosheets (NSNs) modified with poly(3,4-ethylenedioxythiophene:polystyrene sulfonate (PEDOT:PSS) and their successful implementation in battery-type SCs. Initially, a layered 2D NSN is synthesized via a microwave-assisted hydrothermal method and further used as a template to coat PEDOT:PSS in order to prepare NiS2@PEDOT:PSS nanocomposite electrodes by a facile drop-casting method. This is the first-time report on the synthesis of a hierarchical NiS2@PEDOT:PSS nanocomposite electrode for battery-type HSC applications. An asymmetric battery-type HSC fabricated with NSN@PEDOT:PSS nanocomposite as positrode and activated carbon as negatrode delivers a maximum energy density of 52.1 Wh/kg at a current density of 1.6 A/g with a corresponding power density of 2500 W/kg.
层状二维层状二硫化镍 (NiS2)@PEDOT:PSS 纳米复合材料作为高能量密度电池型超级电容器的电池型电极
电池型混合超级电容器(HSCs)(又称超级电池组件)是一种新型电化学储能装置,它在可充电电池和传统超级电容器之间架起了一座桥梁。在此,我们报告了用聚 3,4-亚乙二氧基噻吩:聚苯乙烯磺酸盐(PEDOT:PSS)修饰的层状二维二硫化镍(NiS2)纳米片(NSN)的合成及其在电池型 SC 中的成功应用。首先,通过微波辅助水热法合成了层状二维 NSN,然后将其作为模板涂覆在 PEDOT:PSS 上,通过简便的滴铸法制备出 NiS2@PEDOT:PSS 纳米复合电极。这是首次报道用于电池型 HSC 应用的分层 NiS2@PEDOT:PSS 纳米复合电极的合成。以 NSN@PEDOT:PSS 纳米复合材料为正极、活性炭为负极制备的非对称电池型 HSC 在电流密度为 1.6 A/g 时的最大能量密度为 52.1 Wh/kg,相应的功率密度为 2500 W/kg。
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