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Tailoring Porphyrin-Based Electron Accepting Materials for Organic Photovoltaics

机译:量身定制用于有机光伏的基于卟啉的电子接受材料

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摘要

The syntheses, potentiometric responses, optical spectra, electronic structural properties, and integration into photovoltaic devices are described for ethyne-bridged isoindigo-(porphinato)zinc(Ⅱ)-isoindigo chromophores built upon either electron-rich 10,20-diaryl porphyrin (Ar-Iso) or electron-deficient 10,20-bis(perfluoroalkyl)porphyrin (Rf-Iso) frameworks. These supermolecules evince electrochemical responses that trace their geneses to their respective porphyrinic and isoindigoid subunits. The ethyne linkage motif effectively mixes the comparatively weak isoindigo-derived visible excitations with porphyrinic π-π~* states, endowing Ar-Iso and Rf-Iso with high extinction coefficient (ε ~10~5 M~(-1) · cm~(-1)) long-axis polarized absorptions. Ar-Iso and Rf-Iso exhibit total absorptivities per unit mass that greatly exceed that for poly(3-hexyl)thiophene (P3HT) over the 375-900 nm wavelength range where solar flux is maximal. Time-dependent density functional theory calculations highlight the delocalized nature of the low energy singlet excited states of these chromophores, demonstrating how coupled oscillator photophysics can yield organic photovoltaic device (OPV) materials having absorptive properties that supersede those of conventional semiconducting polymers. Prototype OPVs crafted from the poly(3-hexyl)thiophene (P3HT) donor polymer and these new materials (ⅰ) confirm that solar power conversion depends critically upon the driving force for photoinduced hole transfer (HT) from these low-band-gap acceptors, and (ⅱ) underscore the importance of the excited-state reduction potential (E~(-/*)) parameter as a general design criterion for low-band-gap OPV acceptors. OPVs constructed from Rf-Iso and P3HT define rare examples whereby the acceptor material extends the device operating spectral range into the NIR, and demonstrate for the first time that high oscillator strength porphyrinic chromophores, conventionally utilized as electron donors in OPVs, can also be exploited as electron acceptors.
机译:描述了在富含电子的10,20-二芳基卟啉(Ar -Iso)或缺电子的10,20-双(全氟烷基)卟啉(Rf-Iso)骨架。这些超分子表现出电化学反应,将其基因追溯至各自的卟啉和异靛类亚基。乙炔键基序有效地将相对较弱的等靛蓝可见光激发与卟啉的π-π〜*状态混合,赋予高消光系数(ε〜10〜5 M〜(-1)·cm〜 (-1))长轴极化吸收。在太阳能通量最大的375-900 nm波长范围内,Ar-Iso和Rf-Iso的单位质量总吸收率大大超过聚(3-己基)噻吩(P3HT)。随时间变化的密度泛函理论计算突出了这些生色团的低能单重激发态的离域性质,证明了耦合振荡器光物理如何产生具有吸收性的特性可取代传统半导体聚合物的有机光伏器件(OPV)材料。由聚(3-己基)噻吩(P3HT)供体聚合物和这些新材料(ⅰ)制成的原型OPV证实,太阳能转换在很大程度上取决于来自这些低带隙受体的光致空穴传输(HT)的驱动力和(ⅱ)强调了激发态还原电位(E〜(-/ *))参数作为低带隙OPV受体的一般设计标准的重要性。由Rf-Iso和P3HT构成的OPV定义了罕见的例子,受主材料将器件的工作光谱范围扩展到了NIR,并首次证明了通常用作OPVs电子供体的高振荡器强度卟啉发色团作为电子受体。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2014年第50期|17561-17569|共9页
  • 作者单位

    Department of Chemistry, French Family Science Center, Duke University, 124 Science Drive, Durham, North Carolina 27708-0346, United States;

    Department of Chemistry, University of North Carolina at Chapel Hill, Chapel Hill, North Carolina 27599-3290, United States;

    Department of Chemistry, University of North Carolina at Chapel Hill, Chapel Hill, North Carolina 27599-3290, United States;

    Department of Chemistry, French Family Science Center, Duke University, 124 Science Drive, Durham, North Carolina 27708-0346, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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