Cargando…

Heterostructural CuO–ZnO Nanocomposites: A Highly Selective Chemical and Electrochemical NO(2) Sensor

[Image: see text] A simple one-step chemical method is employed for the successful synthesis of CuO(50%)–ZnO(50%) nanocomposites (NCs) and investigation of their gas sensing properties. The X-ray diffraction studies revealed that these CuO–ZnO NCs display a hexagonal wurtzite-type crystal structure....

Descripción completa

Detalles Bibliográficos
Autores principales: Mali, Shivsharan M., Narwade, Shankar S., Navale, Yuvraj H., Tayade, Sakharam B., Digraskar, Renuka V., Patil, Vikas B., Kumbhar, Avinash S., Sathe, Bhaskar R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2019
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6893959/
https://www.ncbi.nlm.nih.gov/pubmed/31815213
http://dx.doi.org/10.1021/acsomega.9b01382
_version_ 1783476308685094912
author Mali, Shivsharan M.
Narwade, Shankar S.
Navale, Yuvraj H.
Tayade, Sakharam B.
Digraskar, Renuka V.
Patil, Vikas B.
Kumbhar, Avinash S.
Sathe, Bhaskar R.
author_facet Mali, Shivsharan M.
Narwade, Shankar S.
Navale, Yuvraj H.
Tayade, Sakharam B.
Digraskar, Renuka V.
Patil, Vikas B.
Kumbhar, Avinash S.
Sathe, Bhaskar R.
author_sort Mali, Shivsharan M.
collection PubMed
description [Image: see text] A simple one-step chemical method is employed for the successful synthesis of CuO(50%)–ZnO(50%) nanocomposites (NCs) and investigation of their gas sensing properties. The X-ray diffraction studies revealed that these CuO–ZnO NCs display a hexagonal wurtzite-type crystal structure. The average width of 50–100 nm and length of 200–600 nm of the NCs were confirmed by transmission electron microscopic images, and the 1:1 proportion of Cu and Zn composition was confirmed by energy-dispersive spectra, i.e., CuO(50%)–ZnO(50%) NC studies. The CuO(50%)–ZnO(50%) NCs exhibit superior gas sensing performance with outstanding selectivity toward NO(2) gas at a working temperature of 200 °C. Moreover, these NCs were used for the indirect evaluation of NO(2) via electrochemical detection of NO(2)(–) (as NO(2) converts into NO(2)(–) once it reacts with moisture, resulting into acid rain, i.e., indirect evaluation of NO(2)). As compared with other known modified electrodes, CuO(50%)–ZnO(50%) NCs show an apparent oxidation of NO(2)(–) with a larger peak current for a wider linear range of nitrite concentration from 20 to 100 mM. We thus demonstrate that the as-synthesized CuO(50%)–ZnO(50%) NCs act as a promising low-cost NO(2) sensor and further confirm their potential toward tunable gas sensors (electrochemical and solid state) (Scheme 1).
format Online
Article
Text
id pubmed-6893959
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-68939592019-12-06 Heterostructural CuO–ZnO Nanocomposites: A Highly Selective Chemical and Electrochemical NO(2) Sensor Mali, Shivsharan M. Narwade, Shankar S. Navale, Yuvraj H. Tayade, Sakharam B. Digraskar, Renuka V. Patil, Vikas B. Kumbhar, Avinash S. Sathe, Bhaskar R. ACS Omega [Image: see text] A simple one-step chemical method is employed for the successful synthesis of CuO(50%)–ZnO(50%) nanocomposites (NCs) and investigation of their gas sensing properties. The X-ray diffraction studies revealed that these CuO–ZnO NCs display a hexagonal wurtzite-type crystal structure. The average width of 50–100 nm and length of 200–600 nm of the NCs were confirmed by transmission electron microscopic images, and the 1:1 proportion of Cu and Zn composition was confirmed by energy-dispersive spectra, i.e., CuO(50%)–ZnO(50%) NC studies. The CuO(50%)–ZnO(50%) NCs exhibit superior gas sensing performance with outstanding selectivity toward NO(2) gas at a working temperature of 200 °C. Moreover, these NCs were used for the indirect evaluation of NO(2) via electrochemical detection of NO(2)(–) (as NO(2) converts into NO(2)(–) once it reacts with moisture, resulting into acid rain, i.e., indirect evaluation of NO(2)). As compared with other known modified electrodes, CuO(50%)–ZnO(50%) NCs show an apparent oxidation of NO(2)(–) with a larger peak current for a wider linear range of nitrite concentration from 20 to 100 mM. We thus demonstrate that the as-synthesized CuO(50%)–ZnO(50%) NCs act as a promising low-cost NO(2) sensor and further confirm their potential toward tunable gas sensors (electrochemical and solid state) (Scheme 1). American Chemical Society 2019-11-18 /pmc/articles/PMC6893959/ /pubmed/31815213 http://dx.doi.org/10.1021/acsomega.9b01382 Text en Copyright © 2019 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Mali, Shivsharan M.
Narwade, Shankar S.
Navale, Yuvraj H.
Tayade, Sakharam B.
Digraskar, Renuka V.
Patil, Vikas B.
Kumbhar, Avinash S.
Sathe, Bhaskar R.
Heterostructural CuO–ZnO Nanocomposites: A Highly Selective Chemical and Electrochemical NO(2) Sensor
title Heterostructural CuO–ZnO Nanocomposites: A Highly Selective Chemical and Electrochemical NO(2) Sensor
title_full Heterostructural CuO–ZnO Nanocomposites: A Highly Selective Chemical and Electrochemical NO(2) Sensor
title_fullStr Heterostructural CuO–ZnO Nanocomposites: A Highly Selective Chemical and Electrochemical NO(2) Sensor
title_full_unstemmed Heterostructural CuO–ZnO Nanocomposites: A Highly Selective Chemical and Electrochemical NO(2) Sensor
title_short Heterostructural CuO–ZnO Nanocomposites: A Highly Selective Chemical and Electrochemical NO(2) Sensor
title_sort heterostructural cuo–zno nanocomposites: a highly selective chemical and electrochemical no(2) sensor
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6893959/
https://www.ncbi.nlm.nih.gov/pubmed/31815213
http://dx.doi.org/10.1021/acsomega.9b01382
work_keys_str_mv AT malishivsharanm heterostructuralcuoznonanocompositesahighlyselectivechemicalandelectrochemicalno2sensor
AT narwadeshankars heterostructuralcuoznonanocompositesahighlyselectivechemicalandelectrochemicalno2sensor
AT navaleyuvrajh heterostructuralcuoznonanocompositesahighlyselectivechemicalandelectrochemicalno2sensor
AT tayadesakharamb heterostructuralcuoznonanocompositesahighlyselectivechemicalandelectrochemicalno2sensor
AT digraskarrenukav heterostructuralcuoznonanocompositesahighlyselectivechemicalandelectrochemicalno2sensor
AT patilvikasb heterostructuralcuoznonanocompositesahighlyselectivechemicalandelectrochemicalno2sensor
AT kumbharavinashs heterostructuralcuoznonanocompositesahighlyselectivechemicalandelectrochemicalno2sensor
AT sathebhaskarr heterostructuralcuoznonanocompositesahighlyselectivechemicalandelectrochemicalno2sensor