4.6 Article

Introducing methoxy or fluorine substitutions on the conjugated side chain to reduce the voltage loss of organic solar cells

Journal

JOURNAL OF MATERIALS CHEMISTRY C
Volume 9, Issue 34, Pages 11163-11171

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1tc02700j

Keywords

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Funding

  1. National Key Research and Development Program of China [2017YFA0206600]
  2. Key Research Program of Frontier Sciences, Chinese Academy of Sciences [QYZDB-SSW-SLH033]
  3. National Natural Science Foundation of China (NSFC) [52073067, 21875052, 51873044, 11874130, 22073022]
  4. Key Technological Innovation Program of Hubei Province [2018AAA013]

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This study successfully achieved the goal of reducing voltage loss and increasing short-circuit current density by adopting different material combinations, balancing V-OC and J(SC) to improve the power conversion efficiency of organic photovoltaic devices.
Developing an effective method to decrease the voltage loss (V-loss) and increase the short-circuit current density (J(SC)) simultaneously is of vital importance to realize high-efficiency organic photovoltaics (OPVs). Herein, we adopted three material combinations based on three medium bandgap (1.91 eV) benzotriazole (BTA)-based polymer donors (J52, J52-F, J52-OMe) and a narrow bandgap (1.48 eV) thiophene-fused benzotriazole containing a small molecule acceptor (JC2) to balance the J(SC) and open-circuit voltage (V-OC). JC2 extended the light harvesting region, affording a high J(SC). Methoxy or fluorine substitutions effectively decrease Delta V-2 and Delta V-3 due to their decreased charge transfer (CT) state absorption and enhanced EL external quantum efficiency (EQE(EL)). Consequently, a significant reduction of total voltage loss of 0.589 V is realized in both J52-OMe and J52-F based devices compared to a large one (0.725 V) for J52:JC2. J52-F and J52-OMe achieved high V-OC values of 0.991 V and 0.986 V, much higher than that of the J52:JC2 combination (0.850 V). On the other hand, in the substituted two blend films a slower charge transfer process and lower hole/electron mobilities than those of the J52:JC2 blend occurred, leading to their slightly lower J(SC). Finally, J52-F:JC2 and J52-OMe:JC2 reach a fine balance between V-OC and J(SC), producing power conversion efficiencies (PCEs) of 11.4% and 11.2%, respectively. This work not only expands the accessible material combinations used in high V-OC systems, but also provides a deep insight into how the subtle substitutions affect their OPV performances.

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