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Ta Doping Effect on Structural and Optical Properties of InTe Thin Films

The objective of this work was to study the influence of Ta doping on the structural, transmittance properties, linear absorption parameter, and nonlinear absorption properties of InTe thin films. The as-deposited samples with different Ta doping concentrations were prepared by a magnetron co-sputte...

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Autores principales: Liu, Chunmin, Yuan, Yafei, Zhang, Xintong, Su, Jing, Song, Xiaoxiao, Ling, Hang, Liao, Yuanjie, Zhang, Hao, Zheng, Yuxiang, Li, Jing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7558691/
https://www.ncbi.nlm.nih.gov/pubmed/32967127
http://dx.doi.org/10.3390/nano10091887
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author Liu, Chunmin
Yuan, Yafei
Zhang, Xintong
Su, Jing
Song, Xiaoxiao
Ling, Hang
Liao, Yuanjie
Zhang, Hao
Zheng, Yuxiang
Li, Jing
author_facet Liu, Chunmin
Yuan, Yafei
Zhang, Xintong
Su, Jing
Song, Xiaoxiao
Ling, Hang
Liao, Yuanjie
Zhang, Hao
Zheng, Yuxiang
Li, Jing
author_sort Liu, Chunmin
collection PubMed
description The objective of this work was to study the influence of Ta doping on the structural, transmittance properties, linear absorption parameter, and nonlinear absorption properties of InTe thin films. The as-deposited samples with different Ta doping concentrations were prepared by a magnetron co-sputtering technique and then annealed in nitrogen atmosphere. Structural investigations by X-ray diffraction revealed the tetragonal structure of InTe samples and that the crystallinity decreases with increasing Ta doping concentration. Further structural analysis by Raman spectra also showed good agreement with X-ray diffraction results. The Ta doping concentration and sample thickness determined by energy-dispersive X-ray spectroscopy and scanning electron microscopy increased as Ta dopant increased. In addition, X-ray photoelectron spectroscopic was carried out to analyze the chemical states of the elements. UV–VIS–NIR transmittance spectra were applied to study the transmittance properties and calculate the linear absorption coefficient. Due to Burstein–Moss effect, the absorption edge moved to shorter wavelengths. Meanwhile, the values of band gap were found to increase from 1.71 ± 0.02 eV to 1.85 ± 0.01 eV with the increase of Ta doping concentration. By performing an open aperture Z-scan technique, we found that all Ta-doped InTe samples exhibited two-photon absorption behaviors. The nonlinear optical absorption parameters, such as modulation depth, two-photon absorption coefficient, and two-photon absorption cross-section, decrease with increasing Ta concentration, whereas the damage threshold increases from 176 ± 0.5 GW/cm(2) to 242 ± 0.5 GW/cm(2). These novel properties show the potential for applications in traditional optoelectronic devices and optical limiters.
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spelling pubmed-75586912020-10-26 Ta Doping Effect on Structural and Optical Properties of InTe Thin Films Liu, Chunmin Yuan, Yafei Zhang, Xintong Su, Jing Song, Xiaoxiao Ling, Hang Liao, Yuanjie Zhang, Hao Zheng, Yuxiang Li, Jing Nanomaterials (Basel) Article The objective of this work was to study the influence of Ta doping on the structural, transmittance properties, linear absorption parameter, and nonlinear absorption properties of InTe thin films. The as-deposited samples with different Ta doping concentrations were prepared by a magnetron co-sputtering technique and then annealed in nitrogen atmosphere. Structural investigations by X-ray diffraction revealed the tetragonal structure of InTe samples and that the crystallinity decreases with increasing Ta doping concentration. Further structural analysis by Raman spectra also showed good agreement with X-ray diffraction results. The Ta doping concentration and sample thickness determined by energy-dispersive X-ray spectroscopy and scanning electron microscopy increased as Ta dopant increased. In addition, X-ray photoelectron spectroscopic was carried out to analyze the chemical states of the elements. UV–VIS–NIR transmittance spectra were applied to study the transmittance properties and calculate the linear absorption coefficient. Due to Burstein–Moss effect, the absorption edge moved to shorter wavelengths. Meanwhile, the values of band gap were found to increase from 1.71 ± 0.02 eV to 1.85 ± 0.01 eV with the increase of Ta doping concentration. By performing an open aperture Z-scan technique, we found that all Ta-doped InTe samples exhibited two-photon absorption behaviors. The nonlinear optical absorption parameters, such as modulation depth, two-photon absorption coefficient, and two-photon absorption cross-section, decrease with increasing Ta concentration, whereas the damage threshold increases from 176 ± 0.5 GW/cm(2) to 242 ± 0.5 GW/cm(2). These novel properties show the potential for applications in traditional optoelectronic devices and optical limiters. MDPI 2020-09-21 /pmc/articles/PMC7558691/ /pubmed/32967127 http://dx.doi.org/10.3390/nano10091887 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Liu, Chunmin
Yuan, Yafei
Zhang, Xintong
Su, Jing
Song, Xiaoxiao
Ling, Hang
Liao, Yuanjie
Zhang, Hao
Zheng, Yuxiang
Li, Jing
Ta Doping Effect on Structural and Optical Properties of InTe Thin Films
title Ta Doping Effect on Structural and Optical Properties of InTe Thin Films
title_full Ta Doping Effect on Structural and Optical Properties of InTe Thin Films
title_fullStr Ta Doping Effect on Structural and Optical Properties of InTe Thin Films
title_full_unstemmed Ta Doping Effect on Structural and Optical Properties of InTe Thin Films
title_short Ta Doping Effect on Structural and Optical Properties of InTe Thin Films
title_sort ta doping effect on structural and optical properties of inte thin films
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7558691/
https://www.ncbi.nlm.nih.gov/pubmed/32967127
http://dx.doi.org/10.3390/nano10091887
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