Please use this identifier to cite or link to this item: https://dspace.iiti.ac.in/handle/123456789/10778
Title: Brønsted Acid-Functionalized Ionic Co(II) Framework: A Tailored Vessel for Electrocatalytic Oxygen Evolution and Size-Exclusive Optical Speciation of Biothiols
Authors: Das, Sandeep;Pathak, Biswarup;
Keywords: Amino acids; Carbon dioxide; Colorimetry; Density functional theory; Metal-Organic Frameworks; Oxygen; Scaffolds; Biothiol speciation; Biothiols; Cationic metals; Colorimetric change; DFT calculation; Electrocatalytic; Electrocatalytic water oxidation; Metalorganic frameworks (MOFs); Robust cationic metal-organic framework; Selective recognition; Size-selective; Size-selective recognition; Water oxidation; Potassium hydroxide; carbon dioxide; ion; metal organic framework; oxygen; water; Carbon Dioxide; Ions; Metal-Organic Frameworks; Oxygen; Water
Issue Date: 2022
Publisher: American Chemical Society
Citation: Goswami, R., Karthick, K., Das, S., Rajput, S., Seal, N., Pathak, B., . . . Neogi, S. (2022). Brønsted acid-functionalized ionic co(II) framework: A tailored vessel for electrocatalytic oxygen evolution and size-exclusive optical speciation of biothiols. ACS Applied Materials and Interfaces, 14(26), 29773-29787. doi:10.1021/acsami.2c05299
Abstract: Metal-organic frameworks (MOFs) not only combine globally demanded renewable energy generation and environmental remediation onto a single platform but also rationalize structure-performance synergies to devise smarter materials with remarkable performance. The robust and non-interpenetrated cationic MOF exemplifies a unique bifunctional scaffold for the efficient electrochemical oxygen evolution reaction (OER) and ultrasensitive monitoring of biohazards. The microporous framework containing Brønsted acid-functionalized [Co2(μ2-OH)(CO2)2] secondary building units (SBUs) exhibits remarkable OER performance in 1 M KOH, requiring 410 mV overpotential to obtain 10 mA cm-2anodic current density, and a low Tafel slope of 55 mV/dec with 93.1% Faradaic efficiency. Apart from the high turnover frequency and electrochemically assessable surface area, steady OER performance over 500 cycles under potentiodynamic and potentiostatic conditions result in long-term catalyst durability. The highly emissive attribute from nitrogen-rich fluorescent struts benefits the MOF in recyclable and selective fluoro-detection of three biothiols (l-cysteine, homocysteine, and glutathione) in water with a fast response time. In addition to colorimetric monitoring in the solid and solution phases, control experiments validate size-exclusive biothiol speciation through molecular-dimension-mediated pore diffusion. The role of SBUs in the OER mechanism is detailed from density functional theory-derived free energy analysis, which also validates the importance of accessible N-sites in sensing via portraying framework-analyte supramolecular interactions. © 2022 American Chemical Society. All rights reserved.
URI: https://doi.org/10.1021/acsami.2c05299
https://dspace.iiti.ac.in/handle/123456789/10778
ISSN: 1944-8244
Type of Material: Journal Article
Appears in Collections:Department of Chemistry

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