S. Pauline Sheeba , D Benny Anburaj , I. Devadoss , R. Selvam , M. Sasikumar , V. Jeevanantham
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The XRD results confirmed that the nanocomposite was successfully synthesized and that the nanoparticles had a correct crystal structure. Raman spectroscopy confirmed the nanocomposite's hybridization, while scanning electron microscopy and transmission electron microscopy showed ZnO nanoparticles embellishing the RGO sheets. At a current density of 2 A g<sup>−1</sup>, the ZnO/RGO@PVA exhibits a high specific capacitance of 1222 F g<sup>−1</sup>, its greater surface area and good ionic diffusion, as shown by the comprehensive morphological study. With a scan rate of 10 mV s<sup>−1</sup>, the manufactured supercapacitor device has a high capacitance retention of around 90 % and outstanding electrochemical performance over 5000 cycles. The findings indicate that the nanocomposite of ZnO and RGO with PVA might be used as an electrode material in supercapacitors.</div></div>","PeriodicalId":17276,"journal":{"name":"Journal of the Indian Chemical Society","volume":"102 5","pages":"Article 101686"},"PeriodicalIF":3.4000,"publicationDate":"2025-03-28","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Reduced graphene enameled ZnO/PVA nanosheets as electrode materials for high-performance supercapacitors\",\"authors\":\"S. Pauline Sheeba , D Benny Anburaj , I. Devadoss , R. Selvam , M. Sasikumar , V. Jeevanantham\",\"doi\":\"10.1016/j.jics.2025.101686\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><div>For future uses, there is a great need for the creation of energy storage materials with a high specific energy. 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引用次数: 0
摘要
为了将来的应用,非常需要创造具有高比能的储能材料。超级电容器有许多潜在的用途,包括商业能源管理系统、太阳能收集和混合动力电动汽车。本文详细介绍了氧化锌、氧化石墨烯和聚乙烯醇的纳米复合材料在超级电容器制造中的应用。采用超声辅助溶液合成技术制备了ZnO/RGO@PVA纳米复合材料。采用x射线衍射(XRD)、场发射扫描电镜(FESEM)、透射电镜(TEM)和共聚焦拉曼光谱等分析技术对制备的ZnO和ZnO/RGO@PVA纳米复合材料进行了分析。XRD结果证实了纳米复合材料的成功合成,纳米颗粒具有正确的晶体结构。拉曼光谱证实了纳米复合材料的杂化,而扫描电子显微镜和透射电子显微镜显示ZnO纳米粒子修饰了RGO片。综合形貌研究表明,在电流密度为2 a g−1时,ZnO/RGO@PVA具有1222 F g−1的高比电容、更大的表面积和良好的离子扩散性能。该超级电容器器件扫描速率为10 mV s−1,具有90%左右的高电容保持率和超过5000次循环的优异电化学性能。研究结果表明,氧化锌和氧化石墨烯与聚乙烯醇的纳米复合材料可以作为超级电容器的电极材料。
Reduced graphene enameled ZnO/PVA nanosheets as electrode materials for high-performance supercapacitors
For future uses, there is a great need for the creation of energy storage materials with a high specific energy. Supercapacitors have many potential uses, including in business energy management systems, solar energy harvesting, and hybrid electric cars. The use of a nanocomposite of ZnO and RGO with PVA in the manufacture of supercapacitors is detailed here. An affordable technique that used ultrasonic-assisted solution synthesis was employed to create the ZnO/RGO@PVA nanocomposite. Analytical techniques such as X-ray diffraction (XRD), field emission scanning electron microscopy (FESEM), transmission electron microscopy (TEM), and confocal Raman spectroscopy were used to analyze the generated ZnO and ZnO/RGO@PVA nanocomposites. The XRD results confirmed that the nanocomposite was successfully synthesized and that the nanoparticles had a correct crystal structure. Raman spectroscopy confirmed the nanocomposite's hybridization, while scanning electron microscopy and transmission electron microscopy showed ZnO nanoparticles embellishing the RGO sheets. At a current density of 2 A g−1, the ZnO/RGO@PVA exhibits a high specific capacitance of 1222 F g−1, its greater surface area and good ionic diffusion, as shown by the comprehensive morphological study. With a scan rate of 10 mV s−1, the manufactured supercapacitor device has a high capacitance retention of around 90 % and outstanding electrochemical performance over 5000 cycles. The findings indicate that the nanocomposite of ZnO and RGO with PVA might be used as an electrode material in supercapacitors.
期刊介绍:
The Journal of the Indian Chemical Society publishes original, fundamental, theorical, experimental research work of highest quality in all areas of chemistry, biochemistry, medicinal chemistry, electrochemistry, agrochemistry, chemical engineering and technology, food chemistry, environmental chemistry, etc.