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Synergistic reductive catalytic effects of an organic and inorganic hybrid covalent organic framework for hydrogen fuel production.
Rani, Sonia; Nadeem, Muhammad; Alrahili, Mazen R; Shalash, Marwan; Bhatti, Moazzam H; Munawar, Khurram Shahzad; Tariq, Muhammad; Asif, Hafiz Muhammad; El-Bahy, Zeinhom M.
Afiliação
  • Rani S; Inorganic Research Laboratory, Institute of Chemical Sciences, Bahauddin Zakariya University Multan, 60800, Pakistan. drtariq2013@hotmail.com.
  • Nadeem M; Department of Chemistry, Allama Iqbal Open University, Islamabad, Pakistan.
  • Alrahili MR; Physics Department, School of Science, Taibah University, Janadah Bin Umayyah Road, 42353, Medina, Saudi Arabia.
  • Shalash M; Department of Chemistry, College of Sciences and Arts Turaif, Northern Border University, Arar, Saudi Arabia.
  • Bhatti MH; Department of Chemistry, Allama Iqbal Open University, Islamabad, Pakistan.
  • Munawar KS; Institute of Chemistry, University of Sargodha, 40100 Punjab, Pakistan.
  • Tariq M; Department of Chemistry, University of Mianwali, 42200 Punjab, Pakistan.
  • Asif HM; Inorganic Research Laboratory, Institute of Chemical Sciences, Bahauddin Zakariya University Multan, 60800, Pakistan. drtariq2013@hotmail.com.
  • El-Bahy ZM; Inorganic Research Laboratory, Institute of Chemical Sciences, Bahauddin Zakariya University Multan, 60800, Pakistan. drtariq2013@hotmail.com.
Dalton Trans ; 53(26): 10875-10889, 2024 Jul 02.
Article em En | MEDLINE | ID: mdl-38874545
ABSTRACT
Electrocatalytic hydrogen generation in alkaline medium has become widely used in a variety of sectors. However, the possibility for additional performance improvement is hampered by slow kinetics. Because of this restriction, careful control over processes such as water dissociation, hydroxyl desorption and hydrogen recombination is required. Covalent organic frameworks (COFs) based on porphyrin and polyoxometalates (POMs) show encouraging electrocatalytic performance, offering a viable route for effective and sustainable hydrogen generation. Their specific architectures lead to increased electrocatalytic activity, which makes them excellent choices for developing water electrolysis as a clean energy conversion method in the alkaline medium. In this regard, TTris@ZnPor and Lindqvist POM were coordinated to create a new eco-friendly and highly active covalent organic framework (TP@VL-COF). In order to describe TP@VL-COF, extensive structural and morphological investigations were carried out through FTIR, 1H NMR, elemental analysis, SEM, fluorescence, UV-visible, PXRD, CV, N2-adsorption isotherm, TGA and DSC analyses. In an alkaline medium, the electrocatalytic capability of 20%C/Pt, TTris@ZnPor, Lindqvist POM and TP@VL-COF was explored and compared for the hydrogen evolution reaction (HER). The TP@VL-COF showed the best catalytic efficiency for HER in an alkaline electrolyte, requiring just a 75 mV overpotential to drive 10 mA cm-2 and outperforming 20%C/Pt, TTris@ZnPor, Lindqvist POM and other reported catalysts. The Tafel slope value also indicates faster kinetics for TP@VL-COF (114 mV dec-1) than for 20%C/Pt (182 mV dec-1) TTris@ZnPor (116 mV dec-1) and Lindqvist POM (125 mV dec-1).

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article