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Unveiling of a smartphone-mediated ratiometric chemosensor towards the nanomolar level detection of lethal CN(−): combined experimental and theoretical validation with the proposition of a molecular logic circuitry

A promising naphthalene-functionalized ratiometric chemosensor (E)-1-((naphthalen-5-yl) methylene)-2-(2,4-dinitrophenyl) hydrazine (DNMH) is unveiled in the present work. DNMH demonstrates brisk discernible colorimetric response from yellow to red in the presence of CN(−), a lethal environmental con...

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Autores principales: Paul, Suparna, Mondal, Udayan, Nag, Somrita, Seth, Madhupa, Banerjee, Priyabrata
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9039805/
https://www.ncbi.nlm.nih.gov/pubmed/35480356
http://dx.doi.org/10.1039/d1ra07139d
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author Paul, Suparna
Mondal, Udayan
Nag, Somrita
Seth, Madhupa
Banerjee, Priyabrata
author_facet Paul, Suparna
Mondal, Udayan
Nag, Somrita
Seth, Madhupa
Banerjee, Priyabrata
author_sort Paul, Suparna
collection PubMed
description A promising naphthalene-functionalized ratiometric chemosensor (E)-1-((naphthalen-5-yl) methylene)-2-(2,4-dinitrophenyl) hydrazine (DNMH) is unveiled in the present work. DNMH demonstrates brisk discernible colorimetric response from yellow to red in the presence of CN(−), a lethal environmental contaminant, in a near-perfect aqueous medium with a LOD of 278 nM. The “key role marker” controlling the electrochemical and non-covalent H-bonding interaction between DNMH and CN(−) is through the commendable role of acidic –NH functionalities. Kinetic studies reveal a pseudo second order reaction rate and the formation of an unprecedented photostable adduct. The negative value of ΔG as evaluated from ITC substantiates the spontaneity of the DNMH⋯CN(−) interaction. The sensing mechanism was further reinforced with state-of-the-art theoretical investigations, namely DFT, TDDFT and Fukui indices (FIs). Moreover, the proposition of a reversible multi-component logic circuitry implementing Boolean functions in molecular electronics has also been triggered by the turn-over spectrophotometric response of the ditopic ions CN(−) and Cd(2+). The cytotoxicity of DNMH towards Bacillus thuringiensis and Escherichia coli is successfully investigated via the MTT assay. Impressively, “dip stick” and “easy to prepare” test paper device and silica gel-based solid-phase CN(−) recognition validate the on-site analytical application of DNMH. Furthermore, the involvement of a synergistic approach between ‘chemistry beyond the molecule’ and ‘engineering’ via an exquisitely implemented smartphone-assisted colorimetric sensory prototype makes this work unprecedented among its congeners and introduces a new frontier in multitudinous material-based functional product development.
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spelling pubmed-90398052022-04-26 Unveiling of a smartphone-mediated ratiometric chemosensor towards the nanomolar level detection of lethal CN(−): combined experimental and theoretical validation with the proposition of a molecular logic circuitry Paul, Suparna Mondal, Udayan Nag, Somrita Seth, Madhupa Banerjee, Priyabrata RSC Adv Chemistry A promising naphthalene-functionalized ratiometric chemosensor (E)-1-((naphthalen-5-yl) methylene)-2-(2,4-dinitrophenyl) hydrazine (DNMH) is unveiled in the present work. DNMH demonstrates brisk discernible colorimetric response from yellow to red in the presence of CN(−), a lethal environmental contaminant, in a near-perfect aqueous medium with a LOD of 278 nM. The “key role marker” controlling the electrochemical and non-covalent H-bonding interaction between DNMH and CN(−) is through the commendable role of acidic –NH functionalities. Kinetic studies reveal a pseudo second order reaction rate and the formation of an unprecedented photostable adduct. The negative value of ΔG as evaluated from ITC substantiates the spontaneity of the DNMH⋯CN(−) interaction. The sensing mechanism was further reinforced with state-of-the-art theoretical investigations, namely DFT, TDDFT and Fukui indices (FIs). Moreover, the proposition of a reversible multi-component logic circuitry implementing Boolean functions in molecular electronics has also been triggered by the turn-over spectrophotometric response of the ditopic ions CN(−) and Cd(2+). The cytotoxicity of DNMH towards Bacillus thuringiensis and Escherichia coli is successfully investigated via the MTT assay. Impressively, “dip stick” and “easy to prepare” test paper device and silica gel-based solid-phase CN(−) recognition validate the on-site analytical application of DNMH. Furthermore, the involvement of a synergistic approach between ‘chemistry beyond the molecule’ and ‘engineering’ via an exquisitely implemented smartphone-assisted colorimetric sensory prototype makes this work unprecedented among its congeners and introduces a new frontier in multitudinous material-based functional product development. The Royal Society of Chemistry 2022-04-26 /pmc/articles/PMC9039805/ /pubmed/35480356 http://dx.doi.org/10.1039/d1ra07139d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Paul, Suparna
Mondal, Udayan
Nag, Somrita
Seth, Madhupa
Banerjee, Priyabrata
Unveiling of a smartphone-mediated ratiometric chemosensor towards the nanomolar level detection of lethal CN(−): combined experimental and theoretical validation with the proposition of a molecular logic circuitry
title Unveiling of a smartphone-mediated ratiometric chemosensor towards the nanomolar level detection of lethal CN(−): combined experimental and theoretical validation with the proposition of a molecular logic circuitry
title_full Unveiling of a smartphone-mediated ratiometric chemosensor towards the nanomolar level detection of lethal CN(−): combined experimental and theoretical validation with the proposition of a molecular logic circuitry
title_fullStr Unveiling of a smartphone-mediated ratiometric chemosensor towards the nanomolar level detection of lethal CN(−): combined experimental and theoretical validation with the proposition of a molecular logic circuitry
title_full_unstemmed Unveiling of a smartphone-mediated ratiometric chemosensor towards the nanomolar level detection of lethal CN(−): combined experimental and theoretical validation with the proposition of a molecular logic circuitry
title_short Unveiling of a smartphone-mediated ratiometric chemosensor towards the nanomolar level detection of lethal CN(−): combined experimental and theoretical validation with the proposition of a molecular logic circuitry
title_sort unveiling of a smartphone-mediated ratiometric chemosensor towards the nanomolar level detection of lethal cn(−): combined experimental and theoretical validation with the proposition of a molecular logic circuitry
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9039805/
https://www.ncbi.nlm.nih.gov/pubmed/35480356
http://dx.doi.org/10.1039/d1ra07139d
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