Abstract

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. © 2013 American Chemical Society.

Keywords

Quantum dotMaterials scienceDiffusionPassivationCharge carrierNanotechnologyDopingOptoelectronicsPhysics

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Publication Info

Year
2013
Type
article
Volume
7
Issue
6
Pages
5282-5290
Citations
191
Access
Closed

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David Zhitomirsky, Oleksandr Voznyy, Sjoerd Hoogland et al. (2013). Measuring Charge Carrier Diffusion in Coupled Colloidal Quantum Dot Solids. ACS Nano , 7 (6) , 5282-5290. https://doi.org/10.1021/nn402197a

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DOI
10.1021/nn402197a