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Quinoxaline-Based Wide Band Gap Polymers for Efficient Nonfullerene Organic Solar Cells with Large Open-Circuit Voltages.

Authors :
Yang J
Uddin MA
Tang Y
Wang Y
Wang Y
Su H
Gao R
Chen ZK
Dai J
Woo HY
Guo X
Source :
ACS applied materials & interfaces [ACS Appl Mater Interfaces] 2018 Jul 11; Vol. 10 (27), pp. 23235-23246. Date of Electronic Publication: 2018 Jun 26.
Publication Year :
2018

Abstract

We present here a series of wide-band-gap ( E <subscript>g</subscript> : >1.8 eV) polymer donors by incorporating thiophene-flanked phenylene as an electron-donating unit and quinoxaline as an electron-accepting co-unit to attain large open-circuit voltages ( V <subscript>oc</subscript> s) and short-circuit currents ( J <subscript>sc</subscript> s) in nonfullerene organic solar cells (OSCs). Fluorination was utilized to fine-tailor the energetics of polymer frontier molecular orbitals (FMOs) by replacing a variable number of H atoms on the phenylene moiety with F. It was found that fluorination can effectively modulate the polymer backbone planarity through intramolecular noncovalent S···F and/or H···F interactions. Polymers (P2-P4) show an improved molecular packing with a favorable face-on orientation compared to their nonfluorinated analogue (P1), which is critical to charge carrier transport and collection. When mixed with IDIC, a nonfullerene acceptor, P3 with two F atoms, achieves a remarkable V <subscript>oc</subscript> of 1.00 V and a large J <subscript>sc</subscript> of 15.99 mA/cm <superscript>2</superscript> , simultaneously, yielding a power-conversion efficiency (PCE) of 9.7%. Notably, the 1.00 V V <subscript>oc</subscript> is among the largest values in the IDIC-based OSCs, leading to a small energy loss ( E <subscript>loss</subscript> : 0.62 eV) while maintaining a large PCE. The P3:IDIC blend shows an efficient exciton dissociation through hole transfer even under a small energy offset of 0.16 eV. Further fluorination leads to the polymer P4 with increased chain-twisting and mismatched FMO levels with IDIC, showing the lowest PCE of 2.93%. The results demonstrate that quinoxaline-based copolymers are promising donors for efficient OSCs and the fluorination needs to be fine-adjusted to optimize the interchain packing and physicochemical properties of polymers. Additionally, the structure-property correlations from this work provide useful insights for developing wide-band-gap polymers with low-lying highest occupied molecular orbitals to minimize E <subscript>loss</subscript> and maximize V <subscript>oc</subscript> in nonfullerene OSCs for efficient power conversion.

Details

Language :
English
ISSN :
1944-8252
Volume :
10
Issue :
27
Database :
MEDLINE
Journal :
ACS applied materials & interfaces
Publication Type :
Academic Journal
Accession number :
29911382
Full Text :
https://doi.org/10.1021/acsami.8b04432