Underpinning the conductivity mechanism in wide bandgap metal organic framework through chemical sensing

Metal organic frameworks are an emerging class of materials with a broad range of electronic properties with diverse applications such as sensors, catalysts, and permeable membranes. Here, three isostructural wide bandgap (WB) zeolitic imidazole frameworks (ZIFs) are synthesized having metal ion sit...

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Main Authors: Nithin Bharadwaj Pulumati, Kusuma Urs MB, Sukhendu Mandal, Vinayak B. Kamble
Format: Article
Language:English
Published: AIP Publishing LLC 2020-08-01
Series:AIP Advances
Online Access:http://dx.doi.org/10.1063/5.0014442
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spelling doaj-a97a81a4ea9744f78e44de28a67c81d12020-11-25T02:30:50ZengAIP Publishing LLCAIP Advances2158-32262020-08-01108085105085105-610.1063/5.0014442Underpinning the conductivity mechanism in wide bandgap metal organic framework through chemical sensingNithin Bharadwaj Pulumati0Kusuma Urs MB1Sukhendu Mandal2Vinayak B. Kamble3School of Physics, Indian Institute of Science Education and Research, Thiruvananthapuram 695551, IndiaSchool of Physics, Indian Institute of Science Education and Research, Thiruvananthapuram 695551, IndiaSchool of Chemistry, Indian Institute of Science Education and Research, Thiruvananthapuram 695551, IndiaSchool of Physics, Indian Institute of Science Education and Research, Thiruvananthapuram 695551, IndiaMetal organic frameworks are an emerging class of materials with a broad range of electronic properties with diverse applications such as sensors, catalysts, and permeable membranes. Here, three isostructural wide bandgap (WB) zeolitic imidazole frameworks (ZIFs) are synthesized having metal ion sites occupied by Zn (ZIF-8, Eg = 5.3 eV), Co (ZIF-67, Eg = 4.3 eV), and both Zn and Co (50%–50% mixture). The conductivity mechanism in these WB ZIFs involves the Mott variable range hopping of charge carriers from one metal site to the other. The hopping probability in the mixture is governed by the constitute having a lesser activation energy. Thus, it reveals that the incorporation of a different metal ion (Co in place of Zn) in the lattice forms a parallel low resistance path through hopping at Co sites and hence reduces the sensor response as well as selectivity toward ammonia. This parallel resistance path of the Co channel does not get affected by ammonia since it is found that ammonia has high affinity toward Zn ions and not toward Co ions. Thus, the incorporation of new metal ions hinders the hopping charge transport mechanisms in ZIFs.http://dx.doi.org/10.1063/5.0014442
collection DOAJ
language English
format Article
sources DOAJ
author Nithin Bharadwaj Pulumati
Kusuma Urs MB
Sukhendu Mandal
Vinayak B. Kamble
spellingShingle Nithin Bharadwaj Pulumati
Kusuma Urs MB
Sukhendu Mandal
Vinayak B. Kamble
Underpinning the conductivity mechanism in wide bandgap metal organic framework through chemical sensing
AIP Advances
author_facet Nithin Bharadwaj Pulumati
Kusuma Urs MB
Sukhendu Mandal
Vinayak B. Kamble
author_sort Nithin Bharadwaj Pulumati
title Underpinning the conductivity mechanism in wide bandgap metal organic framework through chemical sensing
title_short Underpinning the conductivity mechanism in wide bandgap metal organic framework through chemical sensing
title_full Underpinning the conductivity mechanism in wide bandgap metal organic framework through chemical sensing
title_fullStr Underpinning the conductivity mechanism in wide bandgap metal organic framework through chemical sensing
title_full_unstemmed Underpinning the conductivity mechanism in wide bandgap metal organic framework through chemical sensing
title_sort underpinning the conductivity mechanism in wide bandgap metal organic framework through chemical sensing
publisher AIP Publishing LLC
series AIP Advances
issn 2158-3226
publishDate 2020-08-01
description Metal organic frameworks are an emerging class of materials with a broad range of electronic properties with diverse applications such as sensors, catalysts, and permeable membranes. Here, three isostructural wide bandgap (WB) zeolitic imidazole frameworks (ZIFs) are synthesized having metal ion sites occupied by Zn (ZIF-8, Eg = 5.3 eV), Co (ZIF-67, Eg = 4.3 eV), and both Zn and Co (50%–50% mixture). The conductivity mechanism in these WB ZIFs involves the Mott variable range hopping of charge carriers from one metal site to the other. The hopping probability in the mixture is governed by the constitute having a lesser activation energy. Thus, it reveals that the incorporation of a different metal ion (Co in place of Zn) in the lattice forms a parallel low resistance path through hopping at Co sites and hence reduces the sensor response as well as selectivity toward ammonia. This parallel resistance path of the Co channel does not get affected by ammonia since it is found that ammonia has high affinity toward Zn ions and not toward Co ions. Thus, the incorporation of new metal ions hinders the hopping charge transport mechanisms in ZIFs.
url http://dx.doi.org/10.1063/5.0014442
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