Poonam, Vijay Kumar, Sandeep Yadav, Chetan, Gauri, Suhaas Gupta, Ravi Kant Choubey, S. Gaurav, Tejendra K. Gupta, Rajeev Ahuja, Sunil Kumar
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The findings reveal the composts’ capacity to accommodate both capacitive and non-capacitive charge storage processes within a symmetric dual-current collector apparatus, showcasing the multifaceted charge storage modalities akin to those observed in capacitors and batteries. The electrochemical assessments, conducted through cyclic voltammetry (CV), galvanostatic charge–discharge (GCD) profiling, and electrochemical impedance spectroscopy (EIS), elucidate the non-faradaic and faradaic charge storage mechanisms in terms of the charge storage efficiency, temporal characteristics of the charge and discharge cycle, specific capacitance, and specific capacity. The results obtained evince the superior charge storage capabilities of the compost samples across various electrolyte solutions relative to the aqueous media. 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At a scan rate of 100 mV/s within a potential window of ± 4.5 V, the CV studies exhibited an area under the curve of 3.3142C, a specific capacitance of 18.4mF/g and a specific capacity of 82.8 mC/g, while the GCD studies were characterised by a charging time of 51 s, a discharging time of 47.2 s, a specific capacitance of 10.4 mF/g and a specific capacity of 94.4 mC/g at an applied current of 400 mA within a potential window of ± 4.5 V.</p></div>","PeriodicalId":473,"journal":{"name":"Applied Physics A","volume":"131 3","pages":""},"PeriodicalIF":2.8000,"publicationDate":"2025-02-18","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Effect of electrolytes on electrical charge storage performance in a compost-based symmetric device\",\"authors\":\"Poonam, Vijay Kumar, Sandeep Yadav, Chetan, Gauri, Suhaas Gupta, Ravi Kant Choubey, S. Gaurav, Tejendra K. 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引用次数: 0
摘要
堆肥的普及及其在生物循环经济中的整合,促进了生物废物到堆肥的无缝转化,为探索可再生能源存储解决方案提供了一个吉祥的途径。因此,本研究在基于堆肥的对称装置设计中研究了电解质对电荷存储的法拉进和非法拉进过程的影响。该调查研究了作为电极材料的堆肥,以及不同的集流器(G-G, Cu-Cu和IN-IN)在不同的水电解质环境(1 M KNO3, 1 M KCl和1 M KOH)中的影响。研究结果揭示了堆肥在对称双电流集电极装置中容纳电容性和非电容性电荷存储过程的能力,展示了类似于在电容器和电池中观察到的多方面电荷存储方式。通过循环伏安法(CV)、恒流充放电谱(GCD)和电化学阻抗谱(EIS)进行电化学评价,从电荷存储效率、充放电周期时间特征、比电容和比容量等方面阐明了非法拉第和法拉第电荷存储机制。结果表明,相对于水介质,堆肥样品在不同电解质溶液中具有优越的电荷存储能力。在对称G-G集流装置中组装的1 M KCl溶液中,C:N比为145.44的堆肥样品表现出最佳的电化学性能。以扫描100 mV / s的速度在一个潜在的窗口±4.5 V,简历的研究表现出的曲线下面积3.3142摄氏度,比电容18.4 mF / 82.8 g和特定能力的mC / g,而肾小球囊性肾病研究的特点是51 s的充电时间,放电时间47.2秒,比电容10.4 mF / g和特定容量的94.4 mC / g 400 mA的应用目前在±4.5 V的一个潜在的窗口。
Effect of electrolytes on electrical charge storage performance in a compost-based symmetric device
The prevalence of compost and its integration within the bio-circular economy, facilitating the seamless conversion of bio-waste into compost, present an auspicious avenue for the exploration of renewable energy storage solutions. Thus, the current study investigates the effect of electrolytes on faradic and non-faradic processes of charge storage in a symmetrical device design based on compost. The inquiry examines the composts as an electrode material and the influence of various current collectors (G–G, Cu–Cu and IN–IN) across distinct aqueous electrolyte environments (1 M KNO3, 1 M KCl and 1 M KOH). The findings reveal the composts’ capacity to accommodate both capacitive and non-capacitive charge storage processes within a symmetric dual-current collector apparatus, showcasing the multifaceted charge storage modalities akin to those observed in capacitors and batteries. The electrochemical assessments, conducted through cyclic voltammetry (CV), galvanostatic charge–discharge (GCD) profiling, and electrochemical impedance spectroscopy (EIS), elucidate the non-faradaic and faradaic charge storage mechanisms in terms of the charge storage efficiency, temporal characteristics of the charge and discharge cycle, specific capacitance, and specific capacity. The results obtained evince the superior charge storage capabilities of the compost samples across various electrolyte solutions relative to the aqueous media. The compost specimen featuring a C:N ratio of 145.44 in a 1 M KCl solution assembled in a symmetric G–G current collectors device exhibited the optimal electrochemical performance. At a scan rate of 100 mV/s within a potential window of ± 4.5 V, the CV studies exhibited an area under the curve of 3.3142C, a specific capacitance of 18.4mF/g and a specific capacity of 82.8 mC/g, while the GCD studies were characterised by a charging time of 51 s, a discharging time of 47.2 s, a specific capacitance of 10.4 mF/g and a specific capacity of 94.4 mC/g at an applied current of 400 mA within a potential window of ± 4.5 V.
期刊介绍:
Applied Physics A publishes experimental and theoretical investigations in applied physics as regular articles, rapid communications, and invited papers. The distinguished 30-member Board of Editors reflects the interdisciplinary approach of the journal and ensures the highest quality of peer review.