@article{Jalali2021, 
author = {Houman Bahmani Jalali and Sadra Sadeghi and Isinsu Baylam and Mertcan Han and Cleva W. Ow-Yang and Alphan Sennaroglu and Sedat Nizamoglu},
title = {Exciton recycling via InP quantum dot funnels for luminescent solar concentrators},
year = {2021},
journal = {Nano Research},
volume = {14},
number = {5},
pages = {1488-1494},
keywords = {energy transfer, indium phosphide, quantum dot, light harvesting, luminescent solar concentrator, luminescent solar concentrators (LSC)},
url = {https://www.sciopen.com/article/10.1007/s12274-020-3207-9},
doi = {10.1007/s12274-020-3207-9},
abstract = {Luminescent solar concentrators (LSC) absorb large-area solar radiation and guide down-converted emission to solar cells for electricity production. Quantum dots (QDs) have been widely engineered at device and quantum dot levels for LSCs. Here, we demonstrate cascaded energy transfer and exciton recycling at nanoassembly level for LSCs. The graded structure composed of different sized toxic-heavy-metal-free InP/ZnS core/shell QDs incorporated on copper doped InP QDs, facilitating exciton routing toward narrow band gap QDs at a high nonradiative energy transfer efficiency of 66%. At the final stage of non-radiative energy transfer, the photogenerated holes make ultrafast electronic transitions to copper-induced mid-gap states for radiative recombination in the near-infrared. The exciton recycling facilitates a photoluminescence quantum yield increase of 34% and 61% in comparison with semi-graded and ungraded energy profiles, respectively. Thanks to the suppressed reabsorption and enhanced photoluminescence quantum yield, the graded LSC achieved an optical quantum efficiency of 22.2%. Hence, engineering at nanoassembly level combined with nonradiative energy transfer and exciton funneling offer promise for efficient solar energy harvesting.}
}