Formation of Mn-doped SnO2 Nanoparticles Via the Microwave Technique: Structural, Optical and Electrical Properties

Ultrafine pure and Mn-doped SnO2 nanoparticles (NPs) were synthesized via the microwave technique. They were produced using tin chloride and hexamethylenetetramine at the molar ratio of 1:20. The concentrations of Mn in the SnO2 matrix were in the range of 0.1–5 mol%. These nanomaterials were charac...

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Main Authors: Numan Salah, Sami Habib, Ameer Azam, M. Shahnawaze Ansari, Waleed M. AL-Shawafi
Format: Article
Language:English
Published: SAGE Publishing 2016-03-01
Series:Nanomaterials and Nanotechnology
Subjects:
Online Access:http://www.intechopen.com/journals/nanomaterials_and_nanotechnology/formation-of-mn-doped-sno2-nanoparticles-via-the-microwave-technique-structural-optical-and-electric
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spelling doaj-ddffff98b4064becab8bc2486983c3a32020-11-25T03:28:47ZengSAGE PublishingNanomaterials and Nanotechnology1847-98042016-03-01617http://dx.doi.org/10.5772/6252050034Formation of Mn-doped SnO2 Nanoparticles Via the Microwave Technique: Structural, Optical and Electrical PropertiesNuman SalahSami HabibAmeer AzamM. Shahnawaze AnsariWaleed M. AL-ShawafiUltrafine pure and Mn-doped SnO2 nanoparticles (NPs) were synthesized via the microwave technique. They were produced using tin chloride and hexamethylenetetramine at the molar ratio of 1:20. The concentrations of Mn in the SnO2 matrix were in the range of 0.1–5 mol%. These nanomaterials were characterized using different techni‐ ques. SEM and TEM results show ultrafine NPs with sizes around 10 nm in both pure and Mn-doped samples. A single-phase rutile-type tetragonal structure was observed in pure and Mn-doped samples, as revealed by XRD analysis, while PL emission spectra of these samples showed the broad band peaking at 365 nm. The intensity of this band was observed to increase by increasing the concentration of Mn up to 0.3 mol%, and then to decrease at higher values. A Raman spectrum of the pure sample shows two bands at 630 and 780 cm-1, which are the regular A1g and B2g vibrations of SnO2, while an extra band is observed at 210 cm-1 in the doped samples. The resistivity of Mn-doped SnO2 NPs was observed to decrease by increasing the temperature, but it drastically increased by increasing the Mn content. The activation energy of Mn- doped SnO2 NPs was also calculated, and was found to increase from 0.53 to 1.21 eV by varying the Mn dopant from 0.1 to 5 mol%. These results show that the microwave technique is a powerful tool that can be used to produce a high yield of ultrafine SnO2 NPs. Moreover, Mn was found to be a proper activator for tuning the optical and electrical properties of this material, for its application as a dilute magnetic semiconductor or spintronic devices.http://www.intechopen.com/journals/nanomaterials_and_nanotechnology/formation-of-mn-doped-sno2-nanoparticles-via-the-microwave-technique-structural-optical-and-electricNanoparticlesSnO2MicrowaveElectrical PropertiesOptical Properties
collection DOAJ
language English
format Article
sources DOAJ
author Numan Salah
Sami Habib
Ameer Azam
M. Shahnawaze Ansari
Waleed M. AL-Shawafi
spellingShingle Numan Salah
Sami Habib
Ameer Azam
M. Shahnawaze Ansari
Waleed M. AL-Shawafi
Formation of Mn-doped SnO2 Nanoparticles Via the Microwave Technique: Structural, Optical and Electrical Properties
Nanomaterials and Nanotechnology
Nanoparticles
SnO2
Microwave
Electrical Properties
Optical Properties
author_facet Numan Salah
Sami Habib
Ameer Azam
M. Shahnawaze Ansari
Waleed M. AL-Shawafi
author_sort Numan Salah
title Formation of Mn-doped SnO2 Nanoparticles Via the Microwave Technique: Structural, Optical and Electrical Properties
title_short Formation of Mn-doped SnO2 Nanoparticles Via the Microwave Technique: Structural, Optical and Electrical Properties
title_full Formation of Mn-doped SnO2 Nanoparticles Via the Microwave Technique: Structural, Optical and Electrical Properties
title_fullStr Formation of Mn-doped SnO2 Nanoparticles Via the Microwave Technique: Structural, Optical and Electrical Properties
title_full_unstemmed Formation of Mn-doped SnO2 Nanoparticles Via the Microwave Technique: Structural, Optical and Electrical Properties
title_sort formation of mn-doped sno2 nanoparticles via the microwave technique: structural, optical and electrical properties
publisher SAGE Publishing
series Nanomaterials and Nanotechnology
issn 1847-9804
publishDate 2016-03-01
description Ultrafine pure and Mn-doped SnO2 nanoparticles (NPs) were synthesized via the microwave technique. They were produced using tin chloride and hexamethylenetetramine at the molar ratio of 1:20. The concentrations of Mn in the SnO2 matrix were in the range of 0.1–5 mol%. These nanomaterials were characterized using different techni‐ ques. SEM and TEM results show ultrafine NPs with sizes around 10 nm in both pure and Mn-doped samples. A single-phase rutile-type tetragonal structure was observed in pure and Mn-doped samples, as revealed by XRD analysis, while PL emission spectra of these samples showed the broad band peaking at 365 nm. The intensity of this band was observed to increase by increasing the concentration of Mn up to 0.3 mol%, and then to decrease at higher values. A Raman spectrum of the pure sample shows two bands at 630 and 780 cm-1, which are the regular A1g and B2g vibrations of SnO2, while an extra band is observed at 210 cm-1 in the doped samples. The resistivity of Mn-doped SnO2 NPs was observed to decrease by increasing the temperature, but it drastically increased by increasing the Mn content. The activation energy of Mn- doped SnO2 NPs was also calculated, and was found to increase from 0.53 to 1.21 eV by varying the Mn dopant from 0.1 to 5 mol%. These results show that the microwave technique is a powerful tool that can be used to produce a high yield of ultrafine SnO2 NPs. Moreover, Mn was found to be a proper activator for tuning the optical and electrical properties of this material, for its application as a dilute magnetic semiconductor or spintronic devices.
topic Nanoparticles
SnO2
Microwave
Electrical Properties
Optical Properties
url http://www.intechopen.com/journals/nanomaterials_and_nanotechnology/formation-of-mn-doped-sno2-nanoparticles-via-the-microwave-technique-structural-optical-and-electric
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