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Published on: December 21, 2015
Carrier Dynamics of Strongly Confined CsPbI3 Nanowires
Alexander M Oddo1,2, Hanguk Cho2,3, Rohit Rana1,2
1Department of Chemistry, University of California, Berkeley, Berkeley, California 94720, United States.
None:
We investigate the carrier dynamics of strongly confined cesium lead iodide (CsPbI3) nanowires and compare them with weakly confined quantum dots (QDs) to understand how dimensionality affects recombination processes. Using time-resolved photoluminescence and ultrafast transient absorption spectroscopy, we find that nanowires exhibit a 5× faster recombination rate and more rapid carrier cooling than QDs. These differences are attributed to enhanced carrier interactions with trap states. Although nanowires exhibit slightly enhanced radiative rates as a result of confinement, their photoluminescence quantum yield remains relatively low, 23 ± 8%, due to competition from nonradiative recombination processes that occur at a faster rate. These findings highlight a dimensionality-dependent trade-off between radiative efficiency and nonradiative losses, providing insight into the limitations and opportunities for low-dimensional perovskite nanostructures. Our results establish design principles for tailoring CsPbI3 nanocrystal dimensionality to optimize optical performance in optoelectronic applications such as LEDs and solar cells.
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