Rupa Ranjani Palanisamy , N. Padmanathan , Anjali Ashokan , Amit Tanwar , Subhajit Biswas , Justin D. Holmes , Kafil M. Razeeb
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引用次数: 0
摘要
热电化学电池与电化学能量存储装置相结合,形成了一种将热能转化为电能并存储的综合收集系统。因此,在电化学和热电性能方面表现出高效率的电极的发展是至关重要的,因为它们是能量转换和存储系统的基本组成部分。本研究提出了在活性炭布(ACC)衬底上合成NiSe2-CoSe2 (NCS)纳米线,用于增强电化学电荷存储和离子热电应用。对比分析表明,NCS/ACC电极在电化学性能和热电应用方面都明显优于单金属硒化物。NCS/ACC电极在电流密度为1 ag−1时的最大电荷存储容量为112 mA hg−1。利用1 M NaOH作为水溶液电解质,NCS/ACC系统展示了其在热电化学电池(TEC)中的开创性作用,为高效的热电转换开辟了道路。NCS/ acc基TEC的塞贝克系数为−3.4 mV K−1,热电荷存储为−1.02 j。这些发现揭示了硒化镍钴的双重功能,为电化学系统的热能收集和存储提供了有希望的解决方案。
Dual-functionality of NiSe2-CoSe2 nanowires for electrochemical charge storage and efficient thermal energy conversion
Thermo-electrochemical cell coupled with an electrochemical energy storage device creates a comprehensive harvesting system that can convert thermal energy into electrical energy and store it. Thus, the development of electrodes that demonstrate high efficiencies in electrochemical and thermoelectric properties is crucial, as they serve as the fundamental components in energy conversion and storage systems. This study presents the synthesis of NiSe2-CoSe2 (NCS) nanowires on activated carbon cloth (ACC) substrate, for enhanced electrochemical charge storage and ionic-thermoelectric applications. Comparative analysis demonstrates that NCS/ACC electrodes significantly outperform monometallic selenides in both electrochemical performance and thermoelectric applications. The NCS/ACC electrode revealed a maximum charge storage capacity of 112 mA hg−1 at a current density of 1 A g−1. Utilizing 1 M NaOH as an aqueous electrolyte, the NCS/ACC system showcases its pioneering role in thermo-electrochemical cell (TEC), opening avenues for efficient heat-to-electricity conversion. The NCS/ACC-based TEC delivered a Seebeck coefficient of −3.4 mV K−1 and thermal charge storage of −1.02 J. These findings reveal the dual functionality of nickel cobalt selenides, offering promising solutions for thermal energy harvesting and storage in electrochemical systems.
期刊介绍:
Journal of energy storage focusses on all aspects of energy storage, in particular systems integration, electric grid integration, modelling and analysis, novel energy storage technologies, sizing and management strategies, business models for operation of storage systems and energy storage developments worldwide.