Voltage enhancement in quantum well solar cells

It is known that quantum well solar cells (QWSCs) can enhance short circuit current and power conversion efficiency in comparison with similar, conventional solar cells made from the quantum well (QW) barrier material alone. In this article we report measurements of the dark-current and open-circuit...

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Main Authors: Barnham, K., Connolly, J., GRIFFIN, Paul Robert, Haarpaintner, G., Nelson, J., Tsui, E., Zachariou, A., Osborne, J., Button, C., Hill, G., Hopkinson, M., Pate, M., Roberts, J., Foxon, T.
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Language:English
Published: Institutional Knowledge at Singapore Management University 1996
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Online Access:https://ink.library.smu.edu.sg/sis_research/3232
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spelling sg-smu-ink.sis_research-42342016-09-23T01:42:11Z Voltage enhancement in quantum well solar cells Barnham, K. Connolly, J. GRIFFIN, Paul Robert Haarpaintner, G. Nelson, J. Tsui, E. Zachariou, A. Osborne, J. Button, C. Hill, G. Hopkinson, M. Pate, M. Roberts, J. Foxon, T. It is known that quantum well solar cells (QWSCs) can enhance short circuit current and power conversion efficiency in comparison with similar, conventional solar cells made from the quantum well (QW) barrier material alone. In this article we report measurements of the dark-current and open-circuit voltage (V-oc) of a number of quantum well cells in three different lattice-matched material systems, namely, Ala(0.35)Ga(0.65)As/GaAs, GaInP/GaAs, and InP/InGaAs. We also present the results obtained from comparable control cells without wells formed either from the material of the barriers or the well material alone. Our results clearly demonstrate in all three cases that, al fixed voltage, QWSC dark currents are systematically lower than would be expected from control cells with the same effective absorption edge. Measurements of V-oc in a white-light source show that the open-circuit voltages of the QWSCs are higher than those of control cells formed from the well material. Furthermore, this enhancement is more than is expected from the shift in the absorption edge due to the effect of confinement in the wells. We discuss these results in the light of recent theoretical speculation about the upper limit to the efficiency of an ideal quantum well solar cell. We report on a 50 well QWSC with open-circuit voltage higher than the world record conventional cell formed from the well material, namely, GaAs. 1996-07-15T07:00:00Z text https://ink.library.smu.edu.sg/sis_research/3232 info:doi/10.1063/1.362857 Research Collection School Of Computing and Information Systems eng Institutional Knowledge at Singapore Management University Physical Sciences and Mathematics
institution Singapore Management University
building SMU Libraries
continent Asia
country Singapore
Singapore
content_provider SMU Libraries
collection InK@SMU
language English
topic Physical Sciences and Mathematics
spellingShingle Physical Sciences and Mathematics
Barnham, K.
Connolly, J.
GRIFFIN, Paul Robert
Haarpaintner, G.
Nelson, J.
Tsui, E.
Zachariou, A.
Osborne, J.
Button, C.
Hill, G.
Hopkinson, M.
Pate, M.
Roberts, J.
Foxon, T.
Voltage enhancement in quantum well solar cells
description It is known that quantum well solar cells (QWSCs) can enhance short circuit current and power conversion efficiency in comparison with similar, conventional solar cells made from the quantum well (QW) barrier material alone. In this article we report measurements of the dark-current and open-circuit voltage (V-oc) of a number of quantum well cells in three different lattice-matched material systems, namely, Ala(0.35)Ga(0.65)As/GaAs, GaInP/GaAs, and InP/InGaAs. We also present the results obtained from comparable control cells without wells formed either from the material of the barriers or the well material alone. Our results clearly demonstrate in all three cases that, al fixed voltage, QWSC dark currents are systematically lower than would be expected from control cells with the same effective absorption edge. Measurements of V-oc in a white-light source show that the open-circuit voltages of the QWSCs are higher than those of control cells formed from the well material. Furthermore, this enhancement is more than is expected from the shift in the absorption edge due to the effect of confinement in the wells. We discuss these results in the light of recent theoretical speculation about the upper limit to the efficiency of an ideal quantum well solar cell. We report on a 50 well QWSC with open-circuit voltage higher than the world record conventional cell formed from the well material, namely, GaAs.
format text
author Barnham, K.
Connolly, J.
GRIFFIN, Paul Robert
Haarpaintner, G.
Nelson, J.
Tsui, E.
Zachariou, A.
Osborne, J.
Button, C.
Hill, G.
Hopkinson, M.
Pate, M.
Roberts, J.
Foxon, T.
author_facet Barnham, K.
Connolly, J.
GRIFFIN, Paul Robert
Haarpaintner, G.
Nelson, J.
Tsui, E.
Zachariou, A.
Osborne, J.
Button, C.
Hill, G.
Hopkinson, M.
Pate, M.
Roberts, J.
Foxon, T.
author_sort Barnham, K.
title Voltage enhancement in quantum well solar cells
title_short Voltage enhancement in quantum well solar cells
title_full Voltage enhancement in quantum well solar cells
title_fullStr Voltage enhancement in quantum well solar cells
title_full_unstemmed Voltage enhancement in quantum well solar cells
title_sort voltage enhancement in quantum well solar cells
publisher Institutional Knowledge at Singapore Management University
publishDate 1996
url https://ink.library.smu.edu.sg/sis_research/3232
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