Affiliations 

  • 1 Department of Applied Sciences and Visveswaraya Centre for Nanoscience and Technology, Visveswaraya Technological University PG Centre Bangalore Region, Muddenahalli Chikkaballapura 562103 India
  • 2 Center for Advanced Intelligent Materials, Universiti Malaysia Pahang Kuantan Pahang Malaysia
  • 3 Department of Electronics and Communications, Nagarjuna College of Engineering and Technology Devanahalli Bengaluru 562110 Karnataka India
  • 4 Department of Aeronautical and Automobile Engineering, Manipal Institute of Technology, Manipal Academy of Higher Education (MAHE) Manipal 576104 Karnataka India manjunath.shetty@manipal.edu
  • 5 Department of Physics, Karpagam Academy of Higher Education Coimbatore 641021 Tamil Nadu India
RSC Adv, 2024 Feb 29;14(11):7699-7709.
PMID: 38444968 DOI: 10.1039/d3ra07731d

Abstract

The application of novel one-dimensional (1D) architectures in the field of energy storage has fascinated researchers for a long time. The fast-paced technological advancements require reliable rapid synthesis techniques for the development of various Multi-metal oxide (MMO) nanostructures. For the first time, we report the synthesis of a single-phase hierarchical one-dimensional (1D) branched BiVO4-Reduced Graphene Oxide (BVONB/RGO) nanocomposite with different weight percent variations of RGO starting from 6, 12, 24, and 26 wt% using the supercritical water method (SCW). The affirmation of the sample characteristics is done through various nano-characterization tools that help in establishing the monoclinic crystal structure, and nano branch morphology along with its physical, and thermal characteristics. Further, the electrochemical behavior evaluations of the fabricated coin cells provide insights into the well-known superior initial cycle capacity of around 810 mA h g-1, showing the superior ability of BVONB structures in storing lithium-ions (Li-ions). Meanwhile, an improved cyclic performance of the pure BVONB/RGO with 260 mA h g-1 is evident after 50 cycles. Finally, the reported rapid single-pot SCW approach has delivered promising results in establishing a material process technique for multimetal oxides and their RGO nanocomposites successfully.

* Title and MeSH Headings from MEDLINE®/PubMed®, a database of the U.S. National Library of Medicine.