Energy migration in organic solar concentrators with a molecularly insulated perylene diimide
Date
Authors
Banal, James
Soleimaninejad, Hamid
Jradi, Fadi
Liu, Maoyuan
White, Jonathan
Cooper, Matthew W.
Jones, David J.
Ghiggino, Kenneth
Marder, Seth R.
Smith, Trevor A.
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American Chemical Society
Abstract
Maintaining high incident light absorption while minimizing
luminescence reabsorption is a key challenge for organic luminescent solar
concentrators (LSCs). Energy migration and trapping using light-harvesting
donors and a low-energy highly emitting acceptor is one strategy to reduce the
reabsorption issue. However, concentration quenching and the potential
formation of quenching aggregates is a limiting factor in realizing efficient
devices. We describe the synthesis of a novel molecularly insulated perylene
diimide that can resist luminescence quenching at concentrations in excess of 50
mM. Photophysical measurements show the insulated perylene diimide has an
excitation energy migration diffusion length of 230 ± 10 Å at 60 mM in
poly(methyl methacrylate). LSC devices using a mixture of the insulated
perylene diimide light absorber and perylene red (LR305) as the low-energy trap
emitter exhibit reduced reabsorption and a better current output than LR305
only devices. The results demonstrate that appropriately designed organic
molecule dyes can potentially meet the stringent requirements required for efficient LSCs.
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The Journal of Physical Chemistry C
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