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Hybrid Quadrupole Plasmon Induced Spectrally Pure Ultraviolet Emission from a Single AgNPs@ZnO:Ga Microwire Based Heterojunction Diode

Overview
Journal Nanoscale Adv
Specialty Biotechnology
Date 2022 Sep 22
PMID 36133060
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Abstract

Ultraviolet light-emitting materials and devices with high-efficiency are required for many applications. One promising way to enhance the ultraviolet luminescence efficiency is by incorporating plasmonic nanostructures. However, a large energy mismatch between the plasmons and the light emitters greatly limits the direct realization of light enhancement. In this work, a single Ga-doped ZnO microwire prepared with large-sized Ag nanoparticle (the diameter ∼ 200 nm) deposition (AgNPs@ZnO:Ga MW) was utilized to construct a high-performance heterojunction diode, with p-GaN serving as the hole injection layer. In addition to enhanced optical output, the emission spectra also revealed that typical near-band-edge (NBE) emission with higher wavelength stability centered around 378.0 nm was achieved, accompanied by narrowing of the spectral linewidth to around 10 nm. Thus, the interfacial and p-GaN emissions were successfully suppressed. The spectral profile of the emission spectra of the heterojunction diodes precisely matched the photoluminescence spectrum of the single ZnO:Ga MW, which indicates that the single ZnO:Ga MW can act as the active region for the radiative recombination of electrons and holes in the diode operation. In the emission mechanism, hybrid quadrupole plasmons induce the generation of hot electrons, which are then injected into the conduction band of the neighboring ZnO:Ga and are responsible for the NBE-type emission of the single MW based heterojunction diode. This novel emission enhancement and modulation principle can aid in the design and development of new types of luminescent materials and devices with high-efficiency, spectral stability and spectral purity.

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References
1.
Zhou L, Xiang H, Zhu Y, Ou Q, Wang Q, Du J . Multifunctional Silver Nanoparticle Interlayer-Modified ZnO as the Electron-Injection Layer for Efficient Inverted Organic Light-Emitting Diodes. ACS Appl Mater Interfaces. 2019; 11(9):9251-9258. DOI: 10.1021/acsami.8b21355. View

2.
Lozano G, Rodriguez S, Verschuuren M, Gomez Rivas J . Metallic nanostructures for efficient LED lighting. Light Sci Appl. 2018; 5(6):e16080. PMC: 6059959. DOI: 10.1038/lsa.2016.80. View

3.
Zhao P, Guan X, Zheng H, Jia S, Li L, Liu H . Surface- and Strain-Mediated Reversible Phase Transformation in Quantum-Confined ZnO Nanowires. Phys Rev Lett. 2019; 123(21):216101. DOI: 10.1103/PhysRevLett.123.216101. View

4.
Yao Y, Yang Z, Hwang J, Chuang Y, Lin C, Haung J . Enhancing UV-emissions through optical and electronic dual-function tuning of Ag nanoparticles hybridized with n-ZnO nanorods/p-GaN heterojunction light-emitting diodes. Nanoscale. 2016; 8(8):4463-74. DOI: 10.1039/c5nr08561f. View

5.
Zheng B, Zhao H, Manjavacas A, McClain M, Nordlander P, Halas N . Distinguishing between plasmon-induced and photoexcited carriers in a device geometry. Nat Commun. 2015; 6:7797. PMC: 4510964. DOI: 10.1038/ncomms8797. View