Institute of Particle Technology, FAU Erlangen-Nuremberg, Cauerstr. 4, 91058 Erlangen, Germany.
ACS Nano. 2012 Oct 23;6(10):9021-32. doi: 10.1021/nn303130d. Epub 2012 Sep 25.
This work addresses the determination of arbitrarily shaped particle size distributions (PSDs) from PbS and PbSe quantum dot (QD) optical absorbance spectra in order to arrive at a relationship between band gap energy and particle size over a large size range. Using a modified algorithm which was previously developed for ZnO, we take only bulk absorption data from the literature and match the PSDs derived from QD absorbance spectra with those from transmission electron microscopical (TEM) image analysis in order to arrive at the functional dependence of the band gap on particle size. Additional samples sized solely from their absorbance spectra with our algorithm show excellent agreement with TEM results. We investigate the influence of parameters of the TEM image analysis such as threshold value on the final result. The band gap versus size relationship developed from analysis of just two samples lies well within the bounds of a number of published data sets. We believe that our methodology provides an attractive shortcut for the study of various novel quantum-confined direct band gap semiconductor systems as it permits the band gap energies of a broad size range of QDs to be probed with relatively few synthetic experiments and without quantum mechanical simulations.
这项工作旨在从 PbS 和 PbSe 量子点 (QD) 的光学吸收光谱中确定任意形状的粒径分布 (PSD),以便在较大的尺寸范围内得出带隙能量与粒径之间的关系。我们使用之前为 ZnO 开发的改进算法,仅从文献中获取体相吸收数据,并将从 QD 吸收光谱中得出的 PSD 与透射电子显微镜 (TEM) 图像分析得出的 PSD 进行匹配,以得出带隙与粒径的函数关系。用我们的算法仅从吸收光谱中确定大小的其他样品与 TEM 结果吻合得非常好。我们研究了 TEM 图像分析参数(如阈值)对最终结果的影响。仅从两个样品的分析中得出的带隙与尺寸的关系很好地包含在许多已发表的数据集的范围内。我们相信,我们的方法为各种新型量子限制直接带隙半导体系统的研究提供了一个有吸引力的捷径,因为它允许用相对较少的合成实验和无需量子力学模拟来探测广泛尺寸范围的 QD 的带隙能量。