Czarnocki Cyprian, Kerfoot Mark L, Casara Joshua, Jacobs Andrew R, Jennings Cameron, Scheibner Michael
School of Natural Sciences, University of California, Merced;
School of Natural Sciences, University of California, Merced.
J Vis Exp. 2016 Jun 28(112):53719. doi: 10.3791/53719.
High resolution optical spectroscopy methods are demanding in terms of either technology, equipment, complexity, time or a combination of these. Here we demonstrate an optical spectroscopy method that is capable of resolving spectral features beyond that of the spin fine structure and homogeneous linewidth of single quantum dots (QDs) using a standard, easy-to-use spectrometer setup. This method incorporates both laser and photoluminescence spectroscopy, combining the advantage of laser line-width limited resolution with multi-channel photoluminescence detection. Such a scheme allows for considerable improvement of resolution over that of a common single-stage spectrometer. The method uses phonons to assist in the measurement of the photoluminescence of a single quantum dot after resonant excitation of its ground state transition. The phonon's energy difference allows one to separate and filter out the laser light exciting the quantum dot. An advantageous feature of this method is its straight forward integration into standard spectroscopy setups, which are accessible to most researchers.
高分辨率光学光谱方法在技术、设备、复杂性、时间或这些因素的组合方面要求很高。在这里,我们展示了一种光学光谱方法,该方法能够使用标准的、易于使用的光谱仪设置,分辨出超出单量子点(QD)自旋精细结构和均匀线宽的光谱特征。该方法结合了激光光谱和光致发光光谱,将激光线宽限制分辨率的优势与多通道光致发光检测相结合。这样的方案允许分辨率比普通单级光谱仪有相当大的提高。该方法利用声子来辅助测量单个量子点基态跃迁共振激发后的光致发光。声子的能量差允许人们分离并滤除激发量子点的激光。该方法的一个有利特征是它可以直接集成到大多数研究人员都能使用的标准光谱设置中。