Department of Electrical and Computer Engineering, University of Toronto, 10 King's College Road, Toronto, Ontario, M5S 3G4, Canada.
ACS Nano. 2013 Jun 25;7(6):5282-90. doi: 10.1021/nn402197a. Epub 2013 May 31.
Colloidal quantum dots (CQDs) are attractive materials for inexpensive, room-temperature-, and solution-processed optoelectronic devices. A high carrier diffusion length is desirable for many CQD device applications. In this work we develop two new experimental methods to investigate charge carrier diffusion in coupled CQD solids under charge-neutral, i.e., undepleted, conditions. The methods take advantage of the quantum-size-effect tunability of our materials, utilizing a smaller-bandgap population of quantum dots as a reporter system. We develop analytical models of diffusion in 1D and 3D structures that allow direct extraction of diffusion length from convenient parametric plots and purely optical measurements. We measure several CQD solids fabricated using a number of distinct methods and having significantly different doping and surface ligand treatments. We find that CQD materials recently reported to achieve a certified power conversion efficiency of 7% with hybrid organic-inorganic passivation have a diffusion length of 80 ± 10 nm. The model further allows us to extract the lifetime, trap density, mobility, and diffusion coefficient independently in each material system. This work will facilitate further progress in extending the diffusion length, ultimately leading to high-quality CQD solid semiconducting materials and improved CQD optoelectronic devices, including CQD solar cells.
胶体量子点(CQDs)是用于制造廉价、室温、溶液处理型光电设备的有吸引力的材料。高载流子扩散长度是许多 CQD 器件应用所需要的。在这项工作中,我们开发了两种新的实验方法,以研究在中性电荷(即非耗尽)条件下耦合 CQD 固体中的电荷载流子扩散。这些方法利用了我们材料的量子尺寸效应可调性,利用较小带隙的量子点作为报告系统。我们开发了一维和三维结构中的扩散分析模型,允许直接从方便的参数图和纯光学测量中提取扩散长度。我们测量了几种使用许多不同方法制造的 CQD 固体,这些固体具有明显不同的掺杂和表面配体处理。我们发现,最近报道的在具有混合有机-无机钝化的情况下实现认证功率转换效率为 7%的 CQD 材料具有 80±10nm 的扩散长度。该模型进一步允许我们在每个材料系统中独立提取寿命、陷阱密度、迁移率和扩散系数。这项工作将促进进一步扩展扩散长度的进展,最终导致高质量的 CQD 固体半导体材料和改进的 CQD 光电设备,包括 CQD 太阳能电池。