led电致发光光谱各光谱波段动态特性的测量

V. Sergeev, I. Frolov, O. Radaev
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引用次数: 0

摘要

本文描述了一种测量发光二极管(led)全电致发光光谱的分离光谱分量调制的3db频率的方法。该方法是通过一系列弯曲形状的电流脉冲穿过LED,用海洋光学USB2000+光谱仪以信号积累模式测量LED的发射光谱。随着脉冲频率的增加,LED发射光谱中各光谱分量的强度减小。取光信号相对于低频测量水平下降1.19倍的频率作为LED电致发光光谱中单独光谱分量的3db频率。与使用谐波测试信号的测量手段相比,使用脉冲信号可以提高测量手段的灵敏度。给出了实现所述测量方法的软硬件系统的描述。以商用绿色ingan基led在10-5电流范围内的电致发光光谱为例,测试了测量复合物的测试结果。10- 2a,电流频率范围为0.001给出了。所开发的硬件-软件复合物和估计异质结led光谱复合参数的方法既可用于诊断led的质量,也可用于开发新的发光结构和技术解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Measurement of the Dynamic Characteristics of Separate Spectral Bands of the LEDs Electroluminescence Spectra
A method for measuring the 3 dB frequency of the modulation of separate spectral components of the full electroluminescence spectrum of light-emitting diodes (LEDs) is described. The method consists in passing through the LED a series of current pulses having the shape of a meander, and the emission spectrum of the LED is measured by a spectrometer OceanOptics USB2000+ in the mode of signal accumulation. As the pulse frequency increases, the intensity of all spectral components of the LED emission spectrum decreases. The frequency at which the optical signal decreases 1.19 times relative to the level measured at a low frequency is taken as the 3 dB frequency of the separate spectral component of the LED electroluminescence spectrum. By using the pulse signal it is possible to increase the sensitivity of the measuring means compared to the measuring means using the harmonic test signal. A description of the hardware-software complex implementing said measurement method is presented. The results of testing the measuring complex by the example of measuring the electroluminescence spectra of commercial green InGaN-based LEDs at the current range of 10-5...10-2 A and the current frequency range of 0.001...10 MHz are presented. The developed hardware-software complex and the method for estimating the spectral recombination parameters of heterojunction LEDs can be used both for the purpose of diagnosing the quality of LEDs and in developing structural and technological solutions for creating new light-emitting structures.
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