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Energy Relay Dye Dynamics With Highly Purified Chlorophyll A as Photo-sensitizer

Published online by Cambridge University Press:  19 October 2012

Komal Magsi
Affiliation:
Materials Science Department, Stony Brook University, Stony Brook, NY, 11790, U.S.A. Idalia Solar Technologies, 270 Lafayette St. Suite 1402 New York, NY, 10012, U.S.A.
Ping Lee
Affiliation:
Materials Science Department, Stony Brook University, Stony Brook, NY, 11790, U.S.A. Idalia Solar Technologies, 270 Lafayette St. Suite 1402 New York, NY, 10012, U.S.A.
Yeona Kang
Affiliation:
Materials Science Department, Stony Brook University, Stony Brook, NY, 11790, U.S.A. Idalia Solar Technologies, 270 Lafayette St. Suite 1402 New York, NY, 10012, U.S.A.
Charles M. Fortmann
Affiliation:
Materials Science Department, Stony Brook University, Stony Brook, NY, 11790, U.S.A. Idalia Solar Technologies, 270 Lafayette St. Suite 1402 New York, NY, 10012, U.S.A.
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Abstract

Dye type solar cells, especially those incorporating low cost dyes suffer from a very narrow photo-response wavelength range. Motivated by natural photosynthesis research, energy relay dyes (ERDs) appear to offer a possibility to broaden the dye-cell spectral response. In-turn photovoltaic cells can be an extremely sensitive tool for investigation of dye ERD photochemistry. Sensitive Chlorophyll based dye-type solar cells were prepared from purified natural Chlorophyll A. The importance of Chlorophyll purity is discussed as well as the use of purified Chlorophyll A in combination with ERD’s. . Results shed light on many interesting phenomenon including the nature of purified Chlorophyll A excitation and absorption. Importantly, it was found by this work that the ERD architecture when combined with a photosensitizer do not appear to having greater absorption in the infrared region of the spectrum than the ERD alone indicating a lack of cooperative absorption.

Type
Articles
Copyright
Copyright © Materials Research Society 2012

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References

REFERENCES

O’Regan, B. & Gratzel, M. A low-cost, high-efficiency solar cell based on dye- sensitized colloidal TiO2 films. Nature (1991). 353, 737740.CrossRefGoogle Scholar
Yum, J.-H., Hardin, B. E., Hoke, E. T., Baranoff, E., Zakeeruddin, S. M., Nazeeruddin, M. K., Torres, T., McGehee, M. D. and Grätzel, M. (2011), ChemPhysChem, 12: 657661.CrossRefGoogle Scholar
Siegers, C., Hohl-Ebinger, J., Zimmerrnann, B., Wurfel, U., Mulhaupt, R., Hinsch, A., Haag, R., ChemPhysChem 2007.Google Scholar
Hardin, B. E., Hoke, E. T., Armstrong, P. B., Yum, J.-H., Torres, T., Fréchet, J. M. J., Nazeeruddin, M. K., Grätzel, M., Mcgehee, M. D., Nat. Photonics 2009, 3, 406.CrossRefGoogle Scholar
Yum, J.-H., Hardin, B. E., Moon, S.-J., Baranoff, E., Nuesch, F., McGehee, M. D., Grätzel, M., Nazeeruddin, M. K., Angew. Chem. 2009, 121, 9441.CrossRefGoogle Scholar
Mor, G. K., Basham, J., Paulose, M., Kim, S., Varghese, O. K., Vaish, A., Yoriya, S., Grimes, C. A., Nano Lett. 2010, 10, 2387.CrossRefGoogle Scholar
Yum, J.-H., Baranoff, E., Hardin, B. E., Hoke, E. T., McGehee, M. D., Nüesch, F., Grätzel, M., Nazeeruddin, M. K., Energy Environ. Sci. 2010, 3, 434.CrossRefGoogle Scholar