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首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >Stability of Selected Hydrogen Bonded Semiconductors in Organic Electronic Devices
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Stability of Selected Hydrogen Bonded Semiconductors in Organic Electronic Devices

机译:有机电子器件中所选氢键半导体的稳定性

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摘要

The electronics era is flourishing and morphing itself into Internet of Everything, IoE. At the same time, questions arise on the issue of electronic materials employed: especially their natural availability and low-cost fabrication, their functional stability in devices, and finally their desired biodegradation at the end of their life cycle. Hydrogen bonded pigments and natural dyes like indigo, anthraquinone and acridone are not only biodegradable and of bio-origin but also have functionality robustness and offer versatility in designing electronics and sensors components. With this Perspective, we intend to coalesce all the scattered reports on the above-mentioned classes of hydrogen bonded semiconductors, spanning across several disciplines and many active research groups. The article will comprise both published and unpublished results, on stability during aging, upon electrical, chemical and thermal stress, and will finish with an outlook section related to biological degradation and biological stability of selected hydrogen bonded molecules employed as semiconductors in organic electronic devices. We demonstrate that when the purity, the long-range order and the strength of chemical bonds, are considered, then the Hydrogen bonded organic semiconductors are the privileged class of materials having the potential to compete with inorganic semiconductors. As an experimental historical study of stability, we fabricated and characterized organic transistors from a material batch synthesized in 1932 and compared the results to a fresh material batch.
机译:电子时代是蓬勃发展的,传染于一切,IOE。与此同时,采用电子材料问题出现的问题:尤其是它们的自然可用性和低成本制造,它们在设备中的功能稳定性,并且最终在其生命周期结束时所需的生物降解。氢键色素和天然染料等靛蓝,蒽醌和吖啶酮不仅是生物降解的和生物原因,而且还具有功能鲁棒性,并在设计电子和传感器组件方面提供多功能性。通过这种观点,我们打算将所有分散的报告联合在跨越几个学科和许多活跃的研究组中,跨越上述氢键半导体的所有分散的报告。该物品将包括出版和未发表的结果,在老化期间,在电气,化学和热应力期间的稳定性,并将使用与有机电子器件中所用的所选氢键分子的生物降解和生物稳定性相关的展开部分进行。我们证明,当考虑纯度,远程顺序和化学键的强度时,氢键合有机半导体是具有竞争与无机半导体的潜力的特征材料。作为对稳定性的实验性历史研究,我们从1932年合成的材料批量制造和表征有机晶体管,并将结果与​​新鲜材料批量进行比较。

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  • 作者单位

    Joanneum Res Forschungsgesell mbH Franz Pichler Str 30 A-8160 Weiz Austria;

    Johannes Kepler Univ Linz Phys Chem Linz Inst Organ Solar Cells LIOS Altenberger Str 69 A-4040 Linz Austria;

    Joanneum Res Forschungsgesell mbH Franz Pichler Str 30 A-8160 Weiz Austria;

    Joanneum Res Forschungsgesell mbH Franz Pichler Str 30 A-8160 Weiz Austria;

    Johannes Kepler Univ Linz Phys Chem Linz Inst Organ Solar Cells LIOS Altenberger Str 69 A-4040 Linz Austria;

    Joanneum Res Forschungsgesell mbH Franz Pichler Str 30 A-8160 Weiz Austria;

    Natl Inst Laser Plasma &

    Radiat Phys INFLPR Atomistilor St 409 Bucharest 077125 Ilfov Romania;

    Univ Bari Aldo Moro Dipartimento Chim Via E Orabona 4 I-70126 Ban Italy;

    Univ Bari Aldo Moro Dipartimento Chim Via E Orabona 4 I-70126 Ban Italy;

    Politecn Bari Dept Civil Environm &

    Chem Engn DICATECh Via Orabona 4 I-70125 Bari Italy;

    Rey Juan Carlos Univ Dept Biol &

    Geol Phys &

    Inorgan Chem Calle Tulipan S-N Mostoles 28933 Madrid Spain;

    Rey Juan Carlos Univ Dept Biol &

    Geol Phys &

    Inorgan Chem Calle Tulipan S-N Mostoles 28933 Madrid Spain;

    Rey Juan Carlos Univ Dept Chem &

    Environm Technol Calle Tulipan S-N Mostoles 28933 Madrid Spain;

    Johannes Kepler Univ Linz Phys Chem Linz Inst Organ Solar Cells LIOS Altenberger Str 69 A-4040 Linz Austria;

    Joanneum Res Forschungsgesell mbH Franz Pichler Str 30 A-8160 Weiz Austria;

    Johannes Kepler Univ Linz Phys Chem Linz Inst Organ Solar Cells LIOS Altenberger Str 69 A-4040 Linz Austria;

    Johannes Kepler Univ Linz Phys Chem Linz Inst Organ Solar Cells LIOS Altenberger Str 69 A-4040 Linz Austria;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
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