Cargando…

Thermal Stability, Optical and Electrical Properties of Substoichiometric Molybdenum Oxide

Substoichiometric molybdenum oxide ceramics have aroused widespread interest owing to their promising optical and electrical performance. In this work, the thermal stability and decomposition mechanism of Mo(9)O(26) and Mo(4)O(11) at 700–1000 °C and 700–1100 °C were investigated, respectively. Based...

Descripción completa

Detalles Bibliográficos
Autores principales: Qing, Yubin, Yang, Kaijun, Chen, Yaofeng, Zhu, Jinpeng, Li, Yujing, Chen, Chong, Li, Qingkui, Sun, Benshuang, He, Jilin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10096169/
https://www.ncbi.nlm.nih.gov/pubmed/37049134
http://dx.doi.org/10.3390/ma16072841
_version_ 1785024265130606592
author Qing, Yubin
Yang, Kaijun
Chen, Yaofeng
Zhu, Jinpeng
Li, Yujing
Chen, Chong
Li, Qingkui
Sun, Benshuang
He, Jilin
author_facet Qing, Yubin
Yang, Kaijun
Chen, Yaofeng
Zhu, Jinpeng
Li, Yujing
Chen, Chong
Li, Qingkui
Sun, Benshuang
He, Jilin
author_sort Qing, Yubin
collection PubMed
description Substoichiometric molybdenum oxide ceramics have aroused widespread interest owing to their promising optical and electrical performance. In this work, the thermal stability and decomposition mechanism of Mo(9)O(26) and Mo(4)O(11) at 700–1000 °C and 700–1100 °C were investigated, respectively. Based on this information, MoO(x) (2 < x < 3) bulk ceramics were prepared by spark plasma sintering (SPS). The results show that Mo(9)O(26) is stable up to 790 °C in an argon atmosphere. As the temperature rises, it decomposes into Mo(4)O(11). Mo(4)O(11) can exist stably at 830 °C, beyond which it will convert to MoO(2). The MoO(x) ceramic bulks with four different components (MoO(2.9), MoO(2.8), MoO(2.7) and MoO(2.6)) were successfully sintered by SPS, and their relative density was greater than 96.4% as measured by the Archimedes principle. The reflectivity of MoO(x) ceramic bulk is low and only 6.3% when the composition is MoO(2.8). The resistivity increases from 10(−3) to 10(−1) Ωcm with the increase in the O/Mo atomic ratio x. In general, the thermal stability information provides a theoretical basis for the processing of MoO(x) materials, such as the sintering of the MoO(x) target. The optical and electrical properties show that MoO(x) is a low-reflective conductive oxide material with great photoelectric application value.
format Online
Article
Text
id pubmed-10096169
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-100961692023-04-13 Thermal Stability, Optical and Electrical Properties of Substoichiometric Molybdenum Oxide Qing, Yubin Yang, Kaijun Chen, Yaofeng Zhu, Jinpeng Li, Yujing Chen, Chong Li, Qingkui Sun, Benshuang He, Jilin Materials (Basel) Article Substoichiometric molybdenum oxide ceramics have aroused widespread interest owing to their promising optical and electrical performance. In this work, the thermal stability and decomposition mechanism of Mo(9)O(26) and Mo(4)O(11) at 700–1000 °C and 700–1100 °C were investigated, respectively. Based on this information, MoO(x) (2 < x < 3) bulk ceramics were prepared by spark plasma sintering (SPS). The results show that Mo(9)O(26) is stable up to 790 °C in an argon atmosphere. As the temperature rises, it decomposes into Mo(4)O(11). Mo(4)O(11) can exist stably at 830 °C, beyond which it will convert to MoO(2). The MoO(x) ceramic bulks with four different components (MoO(2.9), MoO(2.8), MoO(2.7) and MoO(2.6)) were successfully sintered by SPS, and their relative density was greater than 96.4% as measured by the Archimedes principle. The reflectivity of MoO(x) ceramic bulk is low and only 6.3% when the composition is MoO(2.8). The resistivity increases from 10(−3) to 10(−1) Ωcm with the increase in the O/Mo atomic ratio x. In general, the thermal stability information provides a theoretical basis for the processing of MoO(x) materials, such as the sintering of the MoO(x) target. The optical and electrical properties show that MoO(x) is a low-reflective conductive oxide material with great photoelectric application value. MDPI 2023-04-02 /pmc/articles/PMC10096169/ /pubmed/37049134 http://dx.doi.org/10.3390/ma16072841 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Qing, Yubin
Yang, Kaijun
Chen, Yaofeng
Zhu, Jinpeng
Li, Yujing
Chen, Chong
Li, Qingkui
Sun, Benshuang
He, Jilin
Thermal Stability, Optical and Electrical Properties of Substoichiometric Molybdenum Oxide
title Thermal Stability, Optical and Electrical Properties of Substoichiometric Molybdenum Oxide
title_full Thermal Stability, Optical and Electrical Properties of Substoichiometric Molybdenum Oxide
title_fullStr Thermal Stability, Optical and Electrical Properties of Substoichiometric Molybdenum Oxide
title_full_unstemmed Thermal Stability, Optical and Electrical Properties of Substoichiometric Molybdenum Oxide
title_short Thermal Stability, Optical and Electrical Properties of Substoichiometric Molybdenum Oxide
title_sort thermal stability, optical and electrical properties of substoichiometric molybdenum oxide
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10096169/
https://www.ncbi.nlm.nih.gov/pubmed/37049134
http://dx.doi.org/10.3390/ma16072841
work_keys_str_mv AT qingyubin thermalstabilityopticalandelectricalpropertiesofsubstoichiometricmolybdenumoxide
AT yangkaijun thermalstabilityopticalandelectricalpropertiesofsubstoichiometricmolybdenumoxide
AT chenyaofeng thermalstabilityopticalandelectricalpropertiesofsubstoichiometricmolybdenumoxide
AT zhujinpeng thermalstabilityopticalandelectricalpropertiesofsubstoichiometricmolybdenumoxide
AT liyujing thermalstabilityopticalandelectricalpropertiesofsubstoichiometricmolybdenumoxide
AT chenchong thermalstabilityopticalandelectricalpropertiesofsubstoichiometricmolybdenumoxide
AT liqingkui thermalstabilityopticalandelectricalpropertiesofsubstoichiometricmolybdenumoxide
AT sunbenshuang thermalstabilityopticalandelectricalpropertiesofsubstoichiometricmolybdenumoxide
AT hejilin thermalstabilityopticalandelectricalpropertiesofsubstoichiometricmolybdenumoxide