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用于半导体量子结构和石墨烯片教育的便携式微光致发光光谱仪的设计与操作。

Design and operation of a portable micro-photoluminescence spectrometer for education on semiconductor quantum structures and graphene sheets.

作者信息

Heyn Christian

机构信息

Center for Hybrid Nanostructures (CHyN), University of Hamburg, Luruper Chaussee 149, 22761 Hamburg, Germany.

出版信息

Rev Sci Instrum. 2021 May 1;92(5):053905. doi: 10.1063/5.0050435.

Abstract

The design and operation of a portable micro-photoluminescence spectrometer for applications in education is described. Guidelines are a compact, robust, portable, and flexible design; operation without cryogenic media for sample cooling; and a limited budget. Targeted samples are semiconductor quantum structures emitting in a wavelength range of 600-1000 nm and graphene sheets. The portable spectrometer includes a reflected-light microscope with a motorized sample stage of 156 nm step size, a thermoelectric sample cooler allowing temperatures down to 196 K, a green and a blue laser for focused excitation, a monochromator with 0.18 nm spectral resolution, and a cooled camera as the image sensor. For demonstration of the capabilities of the spectrometer, measurements of the quantized energy levels of molecular beam epitaxy grown GaAs quantum dots (QDs) are shown. Here, different sample designs are used, the sample temperature as well as the laser excitation power and energy is varied, and the respective influence on the measurements is discussed. A clear QD shell structure with four states is shown for a sample, where approximately four QDs are directly excited by a focused laser. Limitations of the spectrometer for QD characterization mainly due to the waiver of cryogenic media for sample cooling are discussed. As a further example, which does not require sample cooling, local Raman spectroscopy of a graphene sheet is demonstrated where clear Raman signatures allow the identification of a single-layer thickness.

摘要

本文描述了一种用于教育应用的便携式微光致发光光谱仪的设计与操作。设计准则包括紧凑、坚固、便携且灵活的设计;无需低温介质进行样品冷却的操作;以及有限的预算。目标样品是波长范围在600 - 1000 nm发射的半导体量子结构和石墨烯片。该便携式光谱仪包括一台反射光显微镜,其配备步长为156 nm的电动样品台、可将温度降至196 K的热电样品冷却器、用于聚焦激发的绿色和蓝色激光器、光谱分辨率为0.18 nm的单色仪以及作为图像传感器的冷却相机。为了展示光谱仪的性能,给出了分子束外延生长的砷化镓量子点(QD)量子化能级的测量结果。在此,使用了不同的样品设计,改变了样品温度以及激光激发功率和能量,并讨论了它们对测量的各自影响。对于一个样品,展示了具有四个态的清晰的量子点壳层结构,其中大约四个量子点被聚焦激光直接激发。讨论了该光谱仪在量子点表征方面的局限性,主要是由于放弃了用于样品冷却的低温介质。作为另一个不需要样品冷却的例子,展示了石墨烯片的局部拉曼光谱,其中清晰的拉曼特征允许识别单层厚度。

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