Improved Optical Property and Lasing of ZnO Nanowires by Ar Plasma Treatment

Abstract ZnO nanowires play a very important role in optoelectronic devices due to the wide bandgap and high exciton binding energy. However, for one-dimensional nanowire, due to the large surface to volume ratio, surface traps and surface adsorbed species acts as an alternate pathway for the de-exc...

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Main Authors: Haolin Li, Jilong Tang, Fengyuan Lin, Dengkui Wang, Dan Fang, Xuan Fang, Weizhen Liu, Rui Chen, Zhipeng Wei
Format: Article
Language:English
Published: SpringerOpen 2019-09-01
Series:Nanoscale Research Letters
Subjects:
ZnO
Online Access:http://link.springer.com/article/10.1186/s11671-019-3145-1
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spelling doaj-43c968934131458f8cc067a68e967b5f2020-11-25T03:27:16ZengSpringerOpenNanoscale Research Letters1931-75731556-276X2019-09-011411810.1186/s11671-019-3145-1Improved Optical Property and Lasing of ZnO Nanowires by Ar Plasma TreatmentHaolin Li0Jilong Tang1Fengyuan Lin2Dengkui Wang3Dan Fang4Xuan Fang5Weizhen Liu6Rui Chen7Zhipeng Wei8State Key Laboratory of High Power Semiconductor Laser, School of Science, Changchun University of Science and TechnologyState Key Laboratory of High Power Semiconductor Laser, School of Science, Changchun University of Science and TechnologyState Key Laboratory of High Power Semiconductor Laser, School of Science, Changchun University of Science and TechnologyState Key Laboratory of High Power Semiconductor Laser, School of Science, Changchun University of Science and TechnologyState Key Laboratory of High Power Semiconductor Laser, School of Science, Changchun University of Science and TechnologyState Key Laboratory of High Power Semiconductor Laser, School of Science, Changchun University of Science and TechnologyCentre for Advanced Optoelectronic Functional Materials Research and Key Laboratory of UV-Emitting Materials and Technology, Northeast Normal University, Ministry of EducationDepartment of Electrical and Electronic Engineering, Southern University of Science and TechnologyState Key Laboratory of High Power Semiconductor Laser, School of Science, Changchun University of Science and TechnologyAbstract ZnO nanowires play a very important role in optoelectronic devices due to the wide bandgap and high exciton binding energy. However, for one-dimensional nanowire, due to the large surface to volume ratio, surface traps and surface adsorbed species acts as an alternate pathway for the de-excitation of carriers. Ar plasma treatment is a useful method to enhance the optical property of ZnO nanowires. It is necessary to study the optical properties of ZnO nanowires treated by plasma with different energies. Here, we used laser spectroscopy to investigate the plasma treatments with various energies on ZnO nanowires. Significantly improved emission has been observed for low and moderate Ar plasma treatments, which can be ascribed to the surface cleaning effects and increased neutral donor-bound excitons. It is worth mentioning that about 60-folds enhancements of the emission at room temperature can be achieved under 200 W Ar plasma treatment. When the plasma energy exceeds the threshold, high-ion beam energy will cause irreparable damage to the ZnO nanowires. Thanks to the enhanced optical performance, random lasing is observed under optical pumping at room temperature. And the stability has been improved dramatically. By using this simple method, the optical property and stability of ZnO nanowires can be effectively enhanced. These results will play an important role in the development of low dimensional ZnO-based optoelectronic devices.http://link.springer.com/article/10.1186/s11671-019-3145-1ZnOSurface-to-Volume RatioLaser spectroscopySurface modificationLasing
collection DOAJ
language English
format Article
sources DOAJ
author Haolin Li
Jilong Tang
Fengyuan Lin
Dengkui Wang
Dan Fang
Xuan Fang
Weizhen Liu
Rui Chen
Zhipeng Wei
spellingShingle Haolin Li
Jilong Tang
Fengyuan Lin
Dengkui Wang
Dan Fang
Xuan Fang
Weizhen Liu
Rui Chen
Zhipeng Wei
Improved Optical Property and Lasing of ZnO Nanowires by Ar Plasma Treatment
Nanoscale Research Letters
ZnO
Surface-to-Volume Ratio
Laser spectroscopy
Surface modification
Lasing
author_facet Haolin Li
Jilong Tang
Fengyuan Lin
Dengkui Wang
Dan Fang
Xuan Fang
Weizhen Liu
Rui Chen
Zhipeng Wei
author_sort Haolin Li
title Improved Optical Property and Lasing of ZnO Nanowires by Ar Plasma Treatment
title_short Improved Optical Property and Lasing of ZnO Nanowires by Ar Plasma Treatment
title_full Improved Optical Property and Lasing of ZnO Nanowires by Ar Plasma Treatment
title_fullStr Improved Optical Property and Lasing of ZnO Nanowires by Ar Plasma Treatment
title_full_unstemmed Improved Optical Property and Lasing of ZnO Nanowires by Ar Plasma Treatment
title_sort improved optical property and lasing of zno nanowires by ar plasma treatment
publisher SpringerOpen
series Nanoscale Research Letters
issn 1931-7573
1556-276X
publishDate 2019-09-01
description Abstract ZnO nanowires play a very important role in optoelectronic devices due to the wide bandgap and high exciton binding energy. However, for one-dimensional nanowire, due to the large surface to volume ratio, surface traps and surface adsorbed species acts as an alternate pathway for the de-excitation of carriers. Ar plasma treatment is a useful method to enhance the optical property of ZnO nanowires. It is necessary to study the optical properties of ZnO nanowires treated by plasma with different energies. Here, we used laser spectroscopy to investigate the plasma treatments with various energies on ZnO nanowires. Significantly improved emission has been observed for low and moderate Ar plasma treatments, which can be ascribed to the surface cleaning effects and increased neutral donor-bound excitons. It is worth mentioning that about 60-folds enhancements of the emission at room temperature can be achieved under 200 W Ar plasma treatment. When the plasma energy exceeds the threshold, high-ion beam energy will cause irreparable damage to the ZnO nanowires. Thanks to the enhanced optical performance, random lasing is observed under optical pumping at room temperature. And the stability has been improved dramatically. By using this simple method, the optical property and stability of ZnO nanowires can be effectively enhanced. These results will play an important role in the development of low dimensional ZnO-based optoelectronic devices.
topic ZnO
Surface-to-Volume Ratio
Laser spectroscopy
Surface modification
Lasing
url http://link.springer.com/article/10.1186/s11671-019-3145-1
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