系统间交叉
激子
有机太阳能电池
材料科学
光化学
光致发光
超快激光光谱学
聚合物太阳能电池
有机半导体
化学物理
光电子学
太阳能电池
聚合物
原子物理学
单重态
化学
凝聚态物理
物理
光谱学
激发态
量子力学
复合材料
作者
Jeannine Grüne,Giacomo Londi,Alexander J. Gillett,Basil Stähly,Sebastian Lulei,Maria Kotova,Yoann Olivier,Vladimir Dyakonov,Andreas Sperlich
标识
DOI:10.1002/adfm.202212640
摘要
Abstract The great progress in organic photovoltaics (OPV) over the past few years has been largely achieved by the development of non‐fullerene acceptors (NFAs), with power conversion efficiencies now approaching 20%. To further improve device performance, loss mechanisms must be identified and minimized. Triplet states are known to adversely affect device performance, since they can form energetically trapped excitons on low‐lying states that are responsible for non‐radiative losses or even device degradation. Halogenation of OPV materials has long been employed to tailor energy levels and to enhance open circuit voltage. Yet, the influence on recombination to triplet excitons has been largely unexplored. Using the complementary spin‐sensitive methods of photoluminescence detected magnetic resonance and transient electron paramagnetic resonance corroborated by transient absorption and quantum‐chemical calculations, exciton pathways in OPV blends are unravelled employing the polymer donors PBDB‐T, PM6, and PM7 together with NFAs Y6 and Y7. All blends reveal triplet excitons on the NFA populated via non‐geminate hole back transfer and, in blends with halogenated donors, also by spin‐orbit coupling driven intersystem crossing. Identifying these triplet formation pathways in all tested solar cell absorber films highlights the untapped potential for improved charge generation to further increase plateauing OPV efficiencies.
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