...
首页> 外文期刊>Chemical science >Efficient light-harvesting, energy migration, and charge transfer by nanographene-based nonfullerene small-molecule acceptors exhibiting unusually long excited-state lifetime in the film state
【24h】

Efficient light-harvesting, energy migration, and charge transfer by nanographene-based nonfullerene small-molecule acceptors exhibiting unusually long excited-state lifetime in the film state

机译:基于纳米蛋白质的非氟氯丁烯对薄膜终生在胶片状态下表现出异常长的兴奋状态寿命的高效光收获,能量迁移和电荷转移

获取原文
           

摘要

Electron-acceptor small-molecules possessing a long exciton lifetime and a narrow energy band gap, opposing the energy gap law, are highly desirable for high-performance organic photovoltaics (OPVs) by realizing their efficient light-harvesting ability (LH), exciton diffusion (ED), and charge transfer (CT). Toward this goal, we designed an acceptor–donor–acceptor (A–D–A) type nonfullerene acceptor (NFA), TACIC, having an electron-donating, self-assembling two-dimensional (2D) nanographene unit, thienoazacoronene, at the center with electron-withdrawing groups at both ends. The TACIC film exhibited a narrow band gap (1.59 eV) with excellent LH. Surprisingly, the TACIC film showed an extremely long exciton lifetime (1.59 ns), suppressing undesirable nonradiative decay by its unique self-assembling behavior. When combined with a conjugated polymer donor, PBDB-T, slow ED and CT were observed (60 ps) with the excitation of TACIC owing to the large TACIC domain sizes. Nevertheless, the unusually high efficiencies of ED and CT (96% in total) were achieved by the long TACIC exciton lifetime. Additionally, unusual energy transfer (EnT) from the excited PBDB-T to TACIC was seen, demonstrating its dual LH role. The OPV device with PBDB-T and TACIC showed a high incident photon-to-current efficiency (IPCE) exceeding 70% at up to 710 nm and a power conversion efficiency of ~10%. This result will open up avenues for a rational strategy of OPVs where LH, ED, and CT from the acceptor side as well as LH, EnT, ED, and CT from the donor side can be better designed by using 2D nanographene as a promising building block for high-performance A–D–A type NFAs.
机译:具有长兴奋剂寿命和窄能带隙的电子对电力的小分子,与能量差距定律相反,通过实现其有效的光收获能力(LH),激子扩散是非常理想的高性能有机光伏(OPV) (ED)和电荷转移(CT)。对此目标,我们设计了受体 - 供体 - 受体(A-D-A)型非氟氯丁烯受体(NFA),矫形器,具有电子捐赠的自组装二维(2D)纳米图烯单位,Thienoazacoronene。两端带有电子提取组的中心。灰胶膜表现出窄带隙(1.59eV),具有优异的LH。令人惊讶的是,灰尘膜显示出极长的激子寿命(1.59ns),通过其独特的自组装行为抑制不良的非相互性衰减。当与缀合的聚合物供体组合时,观察到PBDB-T,缓慢的ED和CT(60 ps),由于大的造粒域尺寸而激发纺织。然而,通过长型造粒的激子寿命实现了ED和CT的异常高效率(总共96%)。此外,可以看到,从激发的PBDB-T到液体的异常能量转移(ENT),证明其双LH角色。具有PBDB-T和TACIC的OPV器件显示出高于70%的高达70%的高入射光电流效率(IPCE),功率转换效率为约10%。该结果将为来自受体侧的LH,ED和CT以及来自供体侧的LH,ED和CT的Rational策略的途径打开途径,可以通过使用2D纳图作为有前途的建筑物更好地设计用于高性能A-D-A型NFA的块。

著录项

相似文献

  • 外文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号