DocumentCode :
3343239
Title :
The impact of quantum yield through limiting efficiency for multiple exciton generation with intermediate band solar cells
Author :
Jongwon Lee ; Honsberg, Christiana B.
Author_Institution :
Sch. of Electr., Comput. & Energy Eng., Arizona State Univ., Tempe, AZ, USA
fYear :
2013
fDate :
16-21 June 2013
Firstpage :
1041
Lastpage :
1045
Abstract :
We develop the hybrid thermodynamic limit model using the intermediate band solar cells assisted with multiple exciton generation under blackbody radiation. For this hybrid solar cell model, we manage the spectral splitting to maximize the generated number of electron and hole pairs (EHP). First, we have separated two areas to explain the carrier transition. For regarding of quantum yield and charge neutrality, the multiple EHPs are generated at barrier bandgap and one carrier generation is in quantum dot. Thus, to extract additional carrier in quantum dot, it is required additional absorption paths or more photon energy. After studying the procedure of carrier multiplication in intermediate band solar cells, we have calculated the theoretical conversion efficiencies with number of generated EHPs. Its maximum theoretical efficiencies are increased and optimum bandgap is lowered compared to conventional intermediate band solar cells. And, based on these results, we can also choose the suitable material for these hybrid solar cells.
Keywords :
blackbody radiation; electron-hole recombination; energy gap; excitons; quantum dots; solar cells; EHP; absorption paths; barrier bandgap; blackbody radiation; carrier generation; carrier multiplication; carrier transition; charge neutrality; electron and hole pairs; hybrid solar cell model; hybrid thermodynamic limit model; intermediate band solar cells; multiple exciton generation; optimum bandgap; photon energy; quantum dot; quantum yield; spectral splitting; Absorption; Gallium arsenide; Photonic band gap; Photonics; Photovoltaic cells; Quantum dots; bangap; efficiency; intermediate band solar cell; multiple exciton generation; thermodynamic limit;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Photovoltaic Specialists Conference (PVSC), 2013 IEEE 39th
Conference_Location :
Tampa, FL
Type :
conf
DOI :
10.1109/PVSC.2013.6744319
Filename :
6744319
Link To Document :
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