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基于 ZnO 超晶格微纳异质结的激子极化激元发光二极管,通过 Rh 纳米结构增强性能。

Exciton-polariton light-emitting diode based on a single ZnO superlattice microwire heterojunction with performance enhanced by Rh nanostructures.

机构信息

College of Physics, MIIT Key Laboratory of Aerospace Information Materials and Physics, Key Laboratory for Intelligent Nano Materials and Devices, Nanjing University of Aeronautics and Astronautics, No. 29 Jiangjun Road, Nanjing 211106, China.

College of Mathematics and Physics, Nanjing Institute of Technology, Nanjing, 211167, China.

出版信息

Phys Chem Chem Phys. 2023 Feb 15;25(7):5836-5848. doi: 10.1039/d2cp05446a.

Abstract

One-dimensional (1D) wirelike superlattice micro/nanostructures have received considerable attention for potential applications due to their versatility and capability for modulating optical and electrical characteristics. In this study, 1D superlattice microwires (MWs), which are made of undoped ZnO and Ga-doped ZnO with periodic and alternating crystalline layers (ZnO/ZnO:Ga), were synthesized individually. Under optical excitation, a series of resonance peaks in the photoluminescence spectrum can be ascribed to polariton emission, which originates from the coupling interaction of the 1D photonic crystal and confined excitons along the wire direction. Using a p-type GaN layer as the hole transport layer, a kind of waveguide light source based on an individual ZnO/ZnO:Ga superlattice MW was proposed and constructed. By analysing the spatially resolved electroluminescence spectra, the observed multipeak was ascribed to exciton-polariton emission with a vacuum Rabi splitting of about 275 meV. Cladding with Rh nanostructures gives rise to appropriate ultraviolet plasmons, and the Rabi splitting energy of our device was enhanced up to 413 meV. The exciton-polariton properties were further examined using angle-resolved electroluminescence measurements. Therefore, individual superlattice MWs can act as optical microresonators to achieve photon-exciton coupling with a large Rabi splitting energy. The experimental results indicate that an individual ZnO/ZnO:Ga superlattice MW can be generally used in developing exciton-polariton luminescence/lasing light sources, particularly for constructing low-threshold/thresholdless lasers toward pragmatic applications.

摘要

一维(1D)线状超晶格微/纳米结构由于其多功能性和调节光学和电学特性的能力而受到广泛关注,在这项研究中,分别合成了由未掺杂 ZnO 和 Ga 掺杂 ZnO 组成的具有周期性和交替结晶层(ZnO/ZnO:Ga)的 1D 超晶格微丝(MW)。在光激发下,光致发光光谱中的一系列共振峰可以归因于极化激元发射,这源于一维光子晶体和沿丝方向受限激子的耦合相互作用。使用 p 型 GaN 层作为空穴传输层,提出并构建了一种基于单个 ZnO/ZnO:Ga 超晶格 MW 的波导光源。通过分析空间分辨电致发光光谱,观察到的多峰归因于具有约 275 meV 真空拉比分裂的激子极化激元发射。用 Rh 纳米结构覆盖会产生适当的紫外等离子体,我们器件的拉比分裂能量增强到 413 meV。使用角分辨电致发光测量进一步研究了激子极化激元特性。因此,单个超晶格 MW 可以作为光学微谐振器,实现具有大拉比分裂能量的光子-激子耦合。实验结果表明,单个 ZnO/ZnO:Ga 超晶格 MW 可普遍用于开发激子极化激元发光/激光光源,特别是对于构建低阈值/无阈值激光器以实现实际应用。

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