Revolutionizing energy: Vanadium pentoxide (V2O5) and molybdenum disulfide (MoS2) composite incorporated with GQDs as a dual-purpose material for supercapacitors and hydrogen evolution
Haseebul Hassan , Sidra Mumtaz , M. Waqas Iqbal , Amir Muhammad Afzal , Tahmina Yaseen , Muhammad Arslan Sunny , Saikh Mohammad , Nouf H. Alotaibi , Mumtaz Manzoor
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引用次数: 0
Abstract
In the pursuit of developing electrode materials with versatile uses, including energy storage as well as facilitating the hydrogen evolution reaction (HER), extensive research efforts have been dedicated to this domain. A novel composite of V2O5@MoS2 has been synthesized within this study and employed in asymmetric supercapacitors. The V2O5@MoS2 electrode demonstrated a remarkable of 1735C/g at a current density of 2.0 A/g through a comprehensive three-cell investigation. Remarkably, substantial specific surface area of 79.32 m2/g, was detected, ascertained through BET measurement, significantly augmenting its electrochemical performance. Showcasing specific charge capacity (Qs) of 312C/g, furthermore, the V2O5@MoS2 composite was utilized in constructing the supercapattery device. Impressively, the device V2O5@MoS2//AC delivered 57 Wh/kg energy at 1050 W/kg power density. Remarkably, attesting to its exceptional cyclic stability, the V2O5@MoS2 device retained 95 % of its initial capacity, after undergoing 12,000 charge-discharge cycles. Moreover, the V2O5@MoS2 composite demonstrated the lowest overpotential compared to 102 mV composites evaluated in a hydrogen evolution reaction (HER). This underscores the outstanding catalytic activity of the V2O5@MoS2 electrode for HER applications, further validating its potential for utilization in energy storage devices.
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