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首页> 外文期刊>Advanced Functional Materials >Energy Level Engineering in Organic Thin Films by Tailored Halogenation
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Energy Level Engineering in Organic Thin Films by Tailored Halogenation

机译:量身薄膜测定卤化的能量水平工程

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摘要

In modern electronics, it is essential to adapt band structures by adjusting energy levels and band gaps. At first sight, this "band structure engineering" seems impossible in organic semiconductors, which usually exhibit localized electronic states instead of Bloch bands. However, the strong Coulomb interaction in organic semiconductors allows for a continuous shift of the ionization energy (IE) over a wide range by mixing molecules with halogenated derivatives that exhibit different quadrupole moments. Here, this effect of energy level engineering on blends of pentacene and two fluorinated derivatives, in which the position but not the number of fluorine atoms differ, is studied. Structural investigations confirm that pentacene forms intermixed phases in blends with the fluorinated species. The investigation of electronic properties and simulations reveals a much larger shift of the ionization energy (1.5 eV) than in previous studies, allowing to test this model in a range not investigated so far, and emphasizing the role of the position of the halogen atoms. The tuning effect is preserved in electronic devices such as field-effect transistors and significantly influences device characteristics.
机译:在现代电子设备中,通过调整能量水平和带空隙来适应带状结构。乍一看,这种“乐队结构工程”似乎不可能在有机半导体中,这通常展示局部的电子国家而不是布洛克频段。然而,有机半导体中的强库仑相互作用允许通过混合具有卤化衍生物的分子在宽范围内连续偏移,所述卤化衍生物具有不同的四极矩。这里,研究了能量水平工程对五苯并和两种氟化衍生物的混合物的影响,其中存在但不是氟原子的数量不同。结构研究证实,五烯烯与氟化物质共混的混合相。电子特性和模拟的调查显示了电离能量(1.5 eV)的更大偏移而不是在先前的研究中,允许在到目前为止未研究的范围内测试该模型,并强调卤素原子的位置的作用。调谐效果保留在诸如现场效应晶体管的电子设备中,并显着影响器件特性。

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  • 来源
    《Advanced Functional Materials 》 |2020年第32期| 2002987.1-2002987.9| 共9页
  • 作者单位

    Tech Univ Dresden Dresden Integrated Ctr Appl Phys & Photon Mat IAP D-01062 Dresden Germany|Tech Univ Dresden Inst Appl Phys D-01062 Dresden Germany;

    Tech Univ Dresden Ctr Adv Elect Dresden D-01062 Dresden Germany;

    Eberhard Karls Univ Tubingen Inst Angew Phys Morgenstelle 10 D-72076 Tubingen Germany;

    Tech Univ Dresden Dresden Integrated Ctr Appl Phys & Photon Mat IAP D-01062 Dresden Germany|Tech Univ Dresden Inst Appl Phys D-01062 Dresden Germany;

    Tech Univ Dresden Dresden Integrated Ctr Appl Phys & Photon Mat IAP D-01062 Dresden Germany|Tech Univ Dresden Inst Appl Phys D-01062 Dresden Germany;

    Tech Univ Dresden Ctr Adv Elect Dresden D-01062 Dresden Germany;

    Eberhard Karls Univ Tubingen Inst Angew Phys Morgenstelle 10 D-72076 Tubingen Germany;

    Eberhard Karls Univ Tubingen Inst Organ Chem Morgenstelle 18 D-72076 Tubingen Germany;

    Tech Univ Dresden Dresden Integrated Ctr Appl Phys & Photon Mat IAP D-01062 Dresden Germany|Tech Univ Dresden Inst Appl Phys D-01062 Dresden Germany;

    Eberhard Karls Univ Tubingen Inst Organ Chem Morgenstelle 18 D-72076 Tubingen Germany;

    Eberhard Karls Univ Tubingen Inst Angew Phys Morgenstelle 10 D-72076 Tubingen Germany;

    Tech Univ Dresden Ctr Adv Elect Dresden D-01062 Dresden Germany;

    Tech Univ Dresden Dresden Integrated Ctr Appl Phys & Photon Mat IAP D-01062 Dresden Germany|Tech Univ Dresden Inst Appl Phys D-01062 Dresden Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    charge carrier transport; energy level tuning; long-range electrostatic forces; organic electronics; structure-property relationship;

    机译:充电载流子运输;能级调谐;远程静电力;有机电子;结构 - 财产关系;

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