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Low threshold room-temperature UV surface plasmon polariton lasers with ZnO nanowires on single-crystal aluminum films with Al(2)O(3) interlayers

ZnO is one of the most promising optical gain media and allows lasing in ZnO nanowires at room temperature. Plasmonic lasers are potentially useful in applications in biosensing, photonic circuits, and high-capacity signal processing. In this work, we combine ZnO nanowires and single-crystalline alu...

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Autores principales: Liao, Yun-Jhen, Cheng, Chang-Wei, Wu, Bao-Hsian, Wang, Chun-Yuan, Chen, Chih-Yen, Gwo, Shangjr, Chen, Lih-Juann
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9063947/
https://www.ncbi.nlm.nih.gov/pubmed/35519571
http://dx.doi.org/10.1039/c9ra01484e
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author Liao, Yun-Jhen
Cheng, Chang-Wei
Wu, Bao-Hsian
Wang, Chun-Yuan
Chen, Chih-Yen
Gwo, Shangjr
Chen, Lih-Juann
author_facet Liao, Yun-Jhen
Cheng, Chang-Wei
Wu, Bao-Hsian
Wang, Chun-Yuan
Chen, Chih-Yen
Gwo, Shangjr
Chen, Lih-Juann
author_sort Liao, Yun-Jhen
collection PubMed
description ZnO is one of the most promising optical gain media and allows lasing in ZnO nanowires at room temperature. Plasmonic lasers are potentially useful in applications in biosensing, photonic circuits, and high-capacity signal processing. In this work, we combine ZnO nanowires and single-crystalline aluminum films to fabricate Fabry–Perot type surface plasmon polariton (SPP) lasers to overcome the diffraction limit of conventional optics. High quality ZnO nanowires were synthesized by a vapor phase transport process via catalyzed growth. The ZnO nanowires were placed on a single-crystalline Al film grown by molecular beam epitaxy with an interlayer Al(2)O(3) deposited by atomic layer deposition. The plasmonic laser is of metal-oxide-semiconductor (MOS) structure, compatible with silicon device processing. An optimal thickness of atomic layer deposited Al(2)O(3) layer can lead to a low lasing threshold, 6.27 MW cm(−2), which is 3 times and 12 times lower than that of previous reports for ZnO/Al and Zno/Al(2)O(3)/Al plasmonic lasers, respectively, owing to low materials loss. Both the thickness and quality of insulating layers were found to critically influence the lasing threshold of the SPP nanolasers in the subwavelength regime. The simulation results also manifest the importance of the quality of the dielectric interlayer.
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spelling pubmed-90639472022-05-04 Low threshold room-temperature UV surface plasmon polariton lasers with ZnO nanowires on single-crystal aluminum films with Al(2)O(3) interlayers Liao, Yun-Jhen Cheng, Chang-Wei Wu, Bao-Hsian Wang, Chun-Yuan Chen, Chih-Yen Gwo, Shangjr Chen, Lih-Juann RSC Adv Chemistry ZnO is one of the most promising optical gain media and allows lasing in ZnO nanowires at room temperature. Plasmonic lasers are potentially useful in applications in biosensing, photonic circuits, and high-capacity signal processing. In this work, we combine ZnO nanowires and single-crystalline aluminum films to fabricate Fabry–Perot type surface plasmon polariton (SPP) lasers to overcome the diffraction limit of conventional optics. High quality ZnO nanowires were synthesized by a vapor phase transport process via catalyzed growth. The ZnO nanowires were placed on a single-crystalline Al film grown by molecular beam epitaxy with an interlayer Al(2)O(3) deposited by atomic layer deposition. The plasmonic laser is of metal-oxide-semiconductor (MOS) structure, compatible with silicon device processing. An optimal thickness of atomic layer deposited Al(2)O(3) layer can lead to a low lasing threshold, 6.27 MW cm(−2), which is 3 times and 12 times lower than that of previous reports for ZnO/Al and Zno/Al(2)O(3)/Al plasmonic lasers, respectively, owing to low materials loss. Both the thickness and quality of insulating layers were found to critically influence the lasing threshold of the SPP nanolasers in the subwavelength regime. The simulation results also manifest the importance of the quality of the dielectric interlayer. The Royal Society of Chemistry 2019-05-02 /pmc/articles/PMC9063947/ /pubmed/35519571 http://dx.doi.org/10.1039/c9ra01484e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Liao, Yun-Jhen
Cheng, Chang-Wei
Wu, Bao-Hsian
Wang, Chun-Yuan
Chen, Chih-Yen
Gwo, Shangjr
Chen, Lih-Juann
Low threshold room-temperature UV surface plasmon polariton lasers with ZnO nanowires on single-crystal aluminum films with Al(2)O(3) interlayers
title Low threshold room-temperature UV surface plasmon polariton lasers with ZnO nanowires on single-crystal aluminum films with Al(2)O(3) interlayers
title_full Low threshold room-temperature UV surface plasmon polariton lasers with ZnO nanowires on single-crystal aluminum films with Al(2)O(3) interlayers
title_fullStr Low threshold room-temperature UV surface plasmon polariton lasers with ZnO nanowires on single-crystal aluminum films with Al(2)O(3) interlayers
title_full_unstemmed Low threshold room-temperature UV surface plasmon polariton lasers with ZnO nanowires on single-crystal aluminum films with Al(2)O(3) interlayers
title_short Low threshold room-temperature UV surface plasmon polariton lasers with ZnO nanowires on single-crystal aluminum films with Al(2)O(3) interlayers
title_sort low threshold room-temperature uv surface plasmon polariton lasers with zno nanowires on single-crystal aluminum films with al(2)o(3) interlayers
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9063947/
https://www.ncbi.nlm.nih.gov/pubmed/35519571
http://dx.doi.org/10.1039/c9ra01484e
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