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Charge Separation at Organic Interfaces with Near-Zero Energy Offset: A Step toward Designing Inorganic-like Organic
Neno Fuller1, Kushal Rijal1, Elizabeth Udeh1
1Department of Physics and Astronomy, University of Kansas, Lawrence, Kansas 66045, United States.
Abstract:
For organic semiconductors, it is often presumed that an energy level offset at the donor-acceptor (D-A) interface is required to provide the driving force for charge separation (CS). This energy level offset unavoidably leads to a voltage loss in organic photovoltaics. In this work, by using zinc phthalocyanine (ZnPc) and fluorinated zinc phthalocyanine (F4ZnPc) as a model D/A interface, we found that spontaneous CS, with an enthalpy increase of ∼0.3-0.4 eV, can occur even with an interfacial energy offset as small as ∼0.1 eV. This enthalpy-increase CS process is driven by entropy. The entropic driving force can be enhanced by two factors: (1) a point-like spatial contact between the delocalized electron and hole wave function in the charge transfer exciton; (2) a small band bending near the interface originating from long-range electrostatic interaction. Our work demonstrates that effective CS can occur at interfaces with a near-zero energy level offset, which means that the energy loss at the D/A interface can be avoided.
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