4.6 Review

Recent advances in engineered metal oxide nanostructures for supercapacitor applications: experimental and theoretical aspects

期刊

JOURNAL OF MATERIALS CHEMISTRY A
卷 9, 期 33, 页码 17643-17700

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1ta03857e

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资金

  1. Department of Science and Technology (DST)-SERB Early Career Research project [ECR/2017/001850]
  2. DST-Nanomission [DST/NM/NT/2019/205(G)]
  3. Karnataka Science and Technology Promotion Society [829/315, KSTePS/VGST-RGS-F/2018-19/GRD]
  4. Ministry of Human Resource Development (MHRD), India, through a Centre of Excellence grant (CENEMA) [RP-074]
  5. Department of Science and Technology (DST), India [RP-155]
  6. National Aluminium Company Limited (NALCO) [RP-199]
  7. DST-SERB [PDF/2020/000620]

向作者/读者索取更多资源

Supercapacitors, recognized as energy storage devices in sustainable and renewable energy storage, offer higher energy and power density but face challenges such as low energy density and cycle life compared to batteries. Researchers are focusing on improving their electrochemical properties through the fabrication of metal oxide nanostructures and modification methods like doping, introducing oxygen vacancies, and hybridization with carbon allotropes. This review presents advancements in supercapacitor energy storage and highlights approaches in fabricating supercapacitor electrode materials, providing valuable insights for researchers in the energy storage field.
Supercapacitors are widely accepted as one of the energy storage devices in the realm of sustainable and renewable energy storage. Supercapacitors have emerged as a good alternative to traditional capacitors and fuel cells due to their higher energy density and power density compared to batteries and fuel cells. However, supercapacitors have some drawbacks such as low energy density and poor cycle life compared to batteries. To overcome these issues, researchers are paying much attention to the fabrication of metal oxide nanostructures and their modification by different approaches such as doping, introducing oxygen vacancies, and hybridization with nanomaterials of carbon allotropes for enhanced electrochemical properties. In this review article, we have presented the above-mentioned topics with the aid of recently reported works. Moreover, we have provided theoretical insights from density functional theory for the electrochemical behavior of the electrode materials from the published works. This review concisely presents the advancement in the supercapacitor energy storage field and the different approaches involved in the fabrication of supercapacitor electrode materials, which will be very handy to the researchers working in the field of energy storage. Further, the challenges and future perspectives of this exciting research field are discussed in detail.

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