Pruthvi B. Patel, Dharti Patel, Anita R. Patel, Sanjay N. Bariya, Yash G. Kapdi, Vanaraj Solanki, Saurabh S. Soni and Mitesh H. Patel
{"title":"低温合成增强非对称超级电容器性能的椭圆形CoWO4纳米材料","authors":"Pruthvi B. Patel, Dharti Patel, Anita R. Patel, Sanjay N. Bariya, Yash G. Kapdi, Vanaraj Solanki, Saurabh S. Soni and Mitesh H. Patel","doi":"10.1039/D4MA00923A","DOIUrl":null,"url":null,"abstract":"<p >The electrochemical supercapacitor has been shown to be a reliable and innovative type of energy storage technology over the years. Recent research has shown that CoWO<small><sub>4</sub></small> is a potential material for supercapacitor applications because of its unique characteristics, which make it suitable for energy storage. CoWO<small><sub>4</sub></small> nanostructures are synthesized using a low-temperature hydrothermal method followed by calcination at 300 °C for 2 h. The powder was characterized through XRD with Rietveld refinement, FE-SEM, TEM, Raman spectroscopy, FTIR, XPS, BET and electrochemical techniques. XRD analysis revealed a monoclinic crystal framework of CoWO<small><sub>4</sub></small> with a space group of <em>P</em>2/<em>c</em>. FE-SEM and TEM results are in good agreement with each other and reveal elongated oval-shaped nanostructures of CoWO<small><sub>4</sub></small>. BET analysis indicates the mesoporosity in the nanostructures, which helps in the increased active sites for an efficient supercapacitor application. XPS results confirm the presence of a Co<small><sup>2+</sup></small> oxidation state in the CoWO<small><sub>4</sub></small> nanostructure. The electrochemical characterizations were carried out using a three-electrode system. The CoWO<small><sub>4</sub></small> electrode indicates a high specific capacitance of 235 F g<small><sup>−1</sup></small> at 10 mV s<small><sup>−1</sup></small> in 6 M KOH electrolyte between −0.15 V to 0.45 V potential window and retains 93.25% capacitance even after 10 000 cycles. Additionally, an asymmetric supercapacitor is assembled using the CoWO<small><sub>4</sub></small> and activated carbon as the positive and negative electrodes, respectively, achieving a maximum energy density of 51.8 W h kg<small><sup>−1</sup></small> and an excellent capacity retention of 96.43% after 10 000 cycles at 3 A g<small><sup>−1</sup></small>. This work will be helpful in the development of high-capacitive, durable, and safe supercapacitor devices for future energy needs.</p>","PeriodicalId":18242,"journal":{"name":"Materials Advances","volume":" 2","pages":" 726-742"},"PeriodicalIF":5.2000,"publicationDate":"2024-12-05","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://pubs.rsc.org/en/content/articlepdf/2025/ma/d4ma00923a?page=search","citationCount":"0","resultStr":"{\"title\":\"Low-temperature synthesis of oval-shaped CoWO4 nanomaterials for enhanced asymmetric supercapacitor performance†\",\"authors\":\"Pruthvi B. Patel, Dharti Patel, Anita R. Patel, Sanjay N. Bariya, Yash G. Kapdi, Vanaraj Solanki, Saurabh S. Soni and Mitesh H. Patel\",\"doi\":\"10.1039/D4MA00923A\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >The electrochemical supercapacitor has been shown to be a reliable and innovative type of energy storage technology over the years. Recent research has shown that CoWO<small><sub>4</sub></small> is a potential material for supercapacitor applications because of its unique characteristics, which make it suitable for energy storage. CoWO<small><sub>4</sub></small> nanostructures are synthesized using a low-temperature hydrothermal method followed by calcination at 300 °C for 2 h. The powder was characterized through XRD with Rietveld refinement, FE-SEM, TEM, Raman spectroscopy, FTIR, XPS, BET and electrochemical techniques. XRD analysis revealed a monoclinic crystal framework of CoWO<small><sub>4</sub></small> with a space group of <em>P</em>2/<em>c</em>. FE-SEM and TEM results are in good agreement with each other and reveal elongated oval-shaped nanostructures of CoWO<small><sub>4</sub></small>. BET analysis indicates the mesoporosity in the nanostructures, which helps in the increased active sites for an efficient supercapacitor application. XPS results confirm the presence of a Co<small><sup>2+</sup></small> oxidation state in the CoWO<small><sub>4</sub></small> nanostructure. The electrochemical characterizations were carried out using a three-electrode system. The CoWO<small><sub>4</sub></small> electrode indicates a high specific capacitance of 235 F g<small><sup>−1</sup></small> at 10 mV s<small><sup>−1</sup></small> in 6 M KOH electrolyte between −0.15 V to 0.45 V potential window and retains 93.25% capacitance even after 10 000 cycles. Additionally, an asymmetric supercapacitor is assembled using the CoWO<small><sub>4</sub></small> and activated carbon as the positive and negative electrodes, respectively, achieving a maximum energy density of 51.8 W h kg<small><sup>−1</sup></small> and an excellent capacity retention of 96.43% after 10 000 cycles at 3 A g<small><sup>−1</sup></small>. 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引用次数: 0
摘要
多年来,电化学超级电容器已被证明是一种可靠的、创新的储能技术。最近的研究表明,CoWO4是一种潜在的超级电容器材料,因为它具有独特的特性,这使得它适合于储能。采用低温水热法合成了CoWO4纳米结构,并在300℃下煅烧2 h,通过XRD、Rietveld细化、FE-SEM、TEM、拉曼光谱、FTIR、XPS、BET和电化学技术对粉体进行了表征。XRD分析显示CoWO4为单斜晶型,空间基为P2/c。FE-SEM和TEM结果吻合较好,均显示出CoWO4呈椭圆形的细长纳米结构。BET分析表明,纳米结构中的介孔有助于增加活性位点,从而有效地应用于超级电容器。XPS结果证实了CoWO4纳米结构中存在Co2+氧化态。采用三电极体系进行了电化学表征。CoWO4电极在6 M KOH电解液中,在−0.15 V ~ 0.45 V电位窗口范围内,在10 mV s−1条件下具有235 F g−1的高比电容,在循环1万次后仍保持93.25%的电容。此外,以CoWO4和活性炭分别作为正极和负极组装了一个不对称超级电容器,在3 a g−1下循环10000次后,最大能量密度达到51.8 W h kg−1,容量保持率达到96.43%。这项工作将有助于开发高电容、耐用和安全的超级电容器器件,以满足未来的能源需求。
Low-temperature synthesis of oval-shaped CoWO4 nanomaterials for enhanced asymmetric supercapacitor performance†
The electrochemical supercapacitor has been shown to be a reliable and innovative type of energy storage technology over the years. Recent research has shown that CoWO4 is a potential material for supercapacitor applications because of its unique characteristics, which make it suitable for energy storage. CoWO4 nanostructures are synthesized using a low-temperature hydrothermal method followed by calcination at 300 °C for 2 h. The powder was characterized through XRD with Rietveld refinement, FE-SEM, TEM, Raman spectroscopy, FTIR, XPS, BET and electrochemical techniques. XRD analysis revealed a monoclinic crystal framework of CoWO4 with a space group of P2/c. FE-SEM and TEM results are in good agreement with each other and reveal elongated oval-shaped nanostructures of CoWO4. BET analysis indicates the mesoporosity in the nanostructures, which helps in the increased active sites for an efficient supercapacitor application. XPS results confirm the presence of a Co2+ oxidation state in the CoWO4 nanostructure. The electrochemical characterizations were carried out using a three-electrode system. The CoWO4 electrode indicates a high specific capacitance of 235 F g−1 at 10 mV s−1 in 6 M KOH electrolyte between −0.15 V to 0.45 V potential window and retains 93.25% capacitance even after 10 000 cycles. Additionally, an asymmetric supercapacitor is assembled using the CoWO4 and activated carbon as the positive and negative electrodes, respectively, achieving a maximum energy density of 51.8 W h kg−1 and an excellent capacity retention of 96.43% after 10 000 cycles at 3 A g−1. This work will be helpful in the development of high-capacitive, durable, and safe supercapacitor devices for future energy needs.