DocumentCode :
3449389
Title :
Energy transfer between quantum dots of different sizes for quantum dot solar cells
Author :
Holme, Timothy P. ; Chao, Cheng Chieh ; Prinz, Fritz B.
Author_Institution :
Mech. Eng. Dept., Stanford Univ., Escondido, CA, USA
fYear :
2009
fDate :
7-12 June 2009
Abstract :
Exciton recombination and slow charge carrier transport, major limitations of advanced photovoltaic cells, may be mitigated by designing cells with strong electric fields in the active regions. This may be done by combining quantum dots (QDs) of different Fermi levels in close proximity. While previous reports of quantum dot solar cells utilizing QDs of different sizes indicate that electrons and holes are transferred together from large bandgap QDs to small bandgap quantum dots, lowering the efficiency of the solar cell, we report a mechanism that may be able to use different bandgap QDs to split excitons and drive charge carrier transport, increasing the efficiency of solar cells. Quantum simulations of band structures of QDs show indications of this behavior, and experiments on solar cells with quantum dots of different sizes separated by thin insulating layers show improved photocurrent compared to solar cells with QDs of the same size.
Keywords :
Fermi level; carrier lifetime; excitons; photovoltaic cells; quantum dots; solar cells; Fermi levels; band gap quantum dots; energy transfer; exciton recombination; photovoltaic cells; quantum dot solar cells; quantum simulations; slow charge carrier transport; Charge carrier processes; Charge carriers; Energy exchange; Excitons; Insulation; Photoconductivity; Photonic band gap; Photovoltaic cells; Quantum dots; Radiative recombination;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Photovoltaic Specialists Conference (PVSC), 2009 34th IEEE
Conference_Location :
Philadelphia, PA
ISSN :
0160-8371
Print_ISBN :
978-1-4244-2949-3
Electronic_ISBN :
0160-8371
Type :
conf
DOI :
10.1109/PVSC.2009.5411731
Filename :
5411731
Link To Document :
بازگشت