On the role of driving force in molecular photocells
被引:3
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作者:
Sanchez, Fernando
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Univ Nacl Autonoma Mexico, Fac Quim, Dept Fis & Quim Teor, Mexico City, DF, MexicoUniv Nacl Autonoma Mexico, Fac Quim, Dept Fis & Quim Teor, Mexico City, DF, Mexico
Sanchez, Fernando
[1
]
Amador-Bedolla, Carlos
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机构:
Univ Nacl Autonoma Mexico, Fac Quim, Dept Fis & Quim Teor, Mexico City, DF, MexicoUniv Nacl Autonoma Mexico, Fac Quim, Dept Fis & Quim Teor, Mexico City, DF, Mexico
Amador-Bedolla, Carlos
[1
]
Sanchez, Vicenta
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机构:
Univ Nacl Autonoma Mexico, Fac Ciencias, Dept Fis, Mexico City, DF, MexicoUniv Nacl Autonoma Mexico, Fac Quim, Dept Fis & Quim Teor, Mexico City, DF, Mexico
Sanchez, Vicenta
[2
]
Wang, Chumin
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Univ Nacl Autonoma Mexico, Inst Invest Mat, Mexico City, DF, MexicoUniv Nacl Autonoma Mexico, Fac Quim, Dept Fis & Quim Teor, Mexico City, DF, Mexico
Wang, Chumin
[3
]
机构:
[1] Univ Nacl Autonoma Mexico, Fac Quim, Dept Fis & Quim Teor, Mexico City, DF, Mexico
[2] Univ Nacl Autonoma Mexico, Fac Ciencias, Dept Fis, Mexico City, DF, Mexico
[3] Univ Nacl Autonoma Mexico, Inst Invest Mat, Mexico City, DF, Mexico
Exciton diffusion in organic solar cells constitutes a major issue for the next generation of photovoltaic devices, where the competition between driving force and Coulomb attraction constitutes a decisive issue. In this article, such diffusion is investigated by means of a two-dimensional lattice with impurities, originated from an electron-hole attractive Hubbard model. Calculations of the quantum efficiency were carried out by using an effective channel method combined with a real-space renormalization one in order to address conducting leads in molecular photocells. The results show a splitting of the exciton band confirmed by analytical solutions, which leads to an enhanced total quantum efficiency and a shift of its maximum into the strong attractive interaction region when the driving force increases.