Efficient, Stable Infrared Photovoltaics based on Solution-Cast PbSe Colloidal Quantum Dots

Half of the sun’s power lies in the infrared. As a result, the optimal bandgaps for solar cells in both the single-junction and even the tandem architectures lie beyond 850 nm. However, progress in low-cost, large-area, physically-flexible solar cells has instead been made in organic and polymer mat...

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Bibliographic Details
Main Author: Koleilat, Ghada
Other Authors: Sargent, Edward H.
Format: Others
Language:en_ca
Published: 2008
Subjects:
Online Access:http://hdl.handle.net/1807/17189
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spelling ndltd-LACETR-oai-collectionscanada.gc.ca-OTU.1807-171892013-11-05T03:40:55ZEfficient, Stable Infrared Photovoltaics based on Solution-Cast PbSe Colloidal Quantum DotsKoleilat, GhadaNanocrystalsInfrared Photovoltaics0794Half of the sun’s power lies in the infrared. As a result, the optimal bandgaps for solar cells in both the single-junction and even the tandem architectures lie beyond 850 nm. However, progress in low-cost, large-area, physically-flexible solar cells has instead been made in organic and polymer materials possessing absorption onsets in the visible. Recent advances have been achieved in solution-cast infrared photovoltaics through the use of colloidal quantum dots. Here we report stable solution-processed photovoltaic devices having 3.6% power conversion efficiency in the infrared. The use of a strongly-bound bidentate linker, benzenedithiol, ensures device stability over weeks. We investigate in detail the physical mechanisms underlying the operation of this class of device. We find that diffusion of electrons and holes over hundreds of nanometers through our PbSe colloidal quantum dot solid is chiefly responsible for the high external quantum efficiencies obtained in this new class of devices.Sargent, Edward H.2008-112009-02-24T18:48:06ZNO_RESTRICTION2009-02-24T18:48:06Z2009-02-24T18:48:06ZThesis942144 bytesapplication/pdfhttp://hdl.handle.net/1807/17189en_ca
collection NDLTD
language en_ca
format Others
sources NDLTD
topic Nanocrystals
Infrared Photovoltaics
0794
spellingShingle Nanocrystals
Infrared Photovoltaics
0794
Koleilat, Ghada
Efficient, Stable Infrared Photovoltaics based on Solution-Cast PbSe Colloidal Quantum Dots
description Half of the sun’s power lies in the infrared. As a result, the optimal bandgaps for solar cells in both the single-junction and even the tandem architectures lie beyond 850 nm. However, progress in low-cost, large-area, physically-flexible solar cells has instead been made in organic and polymer materials possessing absorption onsets in the visible. Recent advances have been achieved in solution-cast infrared photovoltaics through the use of colloidal quantum dots. Here we report stable solution-processed photovoltaic devices having 3.6% power conversion efficiency in the infrared. The use of a strongly-bound bidentate linker, benzenedithiol, ensures device stability over weeks. We investigate in detail the physical mechanisms underlying the operation of this class of device. We find that diffusion of electrons and holes over hundreds of nanometers through our PbSe colloidal quantum dot solid is chiefly responsible for the high external quantum efficiencies obtained in this new class of devices.
author2 Sargent, Edward H.
author_facet Sargent, Edward H.
Koleilat, Ghada
author Koleilat, Ghada
author_sort Koleilat, Ghada
title Efficient, Stable Infrared Photovoltaics based on Solution-Cast PbSe Colloidal Quantum Dots
title_short Efficient, Stable Infrared Photovoltaics based on Solution-Cast PbSe Colloidal Quantum Dots
title_full Efficient, Stable Infrared Photovoltaics based on Solution-Cast PbSe Colloidal Quantum Dots
title_fullStr Efficient, Stable Infrared Photovoltaics based on Solution-Cast PbSe Colloidal Quantum Dots
title_full_unstemmed Efficient, Stable Infrared Photovoltaics based on Solution-Cast PbSe Colloidal Quantum Dots
title_sort efficient, stable infrared photovoltaics based on solution-cast pbse colloidal quantum dots
publishDate 2008
url http://hdl.handle.net/1807/17189
work_keys_str_mv AT koleilatghada efficientstableinfraredphotovoltaicsbasedonsolutioncastpbsecolloidalquantumdots
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