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Unravelling the formation of carbyne nanocrystals from graphene nanoconstrictions through the hydrothermal treatment of agro-industrial waste molasses.
Jeevanandham, Sampathkumar; Kochhar, Dakshi; Agrawal, Omnarayan; Pahari, Siddhartha; Kar, Chirantan; Goswami, Tamal; Sulania, Indra; Mukherjee, Monalisa.
Afiliação
  • Jeevanandham S; Amity Institute of Click Chemistry Research and Studies, Amity University Uttar Pradesh Noida 201301 India mmukherjee@amity.edu.
  • Kochhar D; Amity Institute of Click Chemistry Research and Studies, Amity University Uttar Pradesh Noida 201301 India mmukherjee@amity.edu.
  • Agrawal O; Amity Institute of Click Chemistry Research and Studies, Amity University Uttar Pradesh Noida 201301 India mmukherjee@amity.edu.
  • Pahari S; Department of Chemical Engineering & Applied Chemistry 200 College Street Toronto ON M5S 3E5 Canada.
  • Kar C; Amity Institute of Applied Science, Amity University Kolkata Kolkata West Bengal 700135 India.
  • Goswami T; Department of Chemistry, Raiganj University Uttar Dinajpur Raiganj West Bengal 733134 India.
  • Sulania I; Inter University Accelerator Centre Vasant Kunj New Delhi Delhi 110067 India.
  • Mukherjee M; Amity Institute of Click Chemistry Research and Studies, Amity University Uttar Pradesh Noida 201301 India mmukherjee@amity.edu.
Nanoscale Adv ; 6(9): 2390-2406, 2024 Apr 30.
Article em En | MEDLINE | ID: mdl-38694474
ABSTRACT
The delicate synthesis of one-dimensional (1D) carbon nanostructures from two-dimensional (2D) graphene moiré layers holds tremendous interest in materials science owing to its unique physiochemical properties exhibited during the formation of hybrid configurations with sp-sp2 hybridization. However, the controlled synthesis of such hybrid sp-sp2 configurations remains highly challenging. Therefore, we employed a simple hydrothermal technique using agro-industrial waste as the carbon source to synthesize 1D carbyne nanocrystals from the nanoconstricted zones of 2D graphene moiré layers. By employing suite of characterization techniques, we delineated the mechanism of carbyne nanocrystal formation, wherein the origin of carbyne nanochains was deciphered from graphene intermediates due to the presence of a hydrothermally cut nanoconstriction regime engendered over well-oriented graphene moiré patterns. The autogenous hydrothermal pressurization of agro-industrial waste under controlled conditions led to the generation of epoxy-rich graphene intermediates, which concomitantly gave rise to carbyne nanocrystal formation in oriented moiré layers with nanogaps. The unique growth of carbyne nanocrystals over a few layers of holey graphene exhibits excellent paramagnetic properties, the predominant localization of electrons and interfacial polarization effects. Further, we extended the application of the as-synthesized carbyne product (Cp) for real-time electrochemical-based toxic metal (As3+) sensing in groundwater samples (from riverbanks), which depicted superior sensitivity (0.22 mA µM-1) even at extremely lower concentrations (0.0001 µM), corroborating the impedance spectroscopy analysis.

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Nanoscale Adv Ano de publicação: 2024 Tipo de documento: Article País de publicação: Reino Unido

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Nanoscale Adv Ano de publicação: 2024 Tipo de documento: Article País de publicação: Reino Unido