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Distinct Electrostatic Interactions Govern the Chiro-Optical Properties and Architectural Arrangement of Peptide-Oligothiophene Hybrid Materials

机译:明显的静电相互作用控制肽 - 寡核苷酸杂交材料的啁啾光学性质和建筑布置

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摘要

The development of chiral optoelectronic materials is of great interest due to their potential of being utilized in electronic devices, biosensors, and artificial enzymes. Herein, we report the chiral optical properties and architectural arrangement of optoelectronic materials generated from noncovalent self-assembly of a cationic synthetic peptide and five chemically defined anionic pentameric oligothiophenes. The peptide-oligothiophene hybrid materials exhibit a three-dimensional ordered helical structure and optical activity in the pi-pi* transition region that are observed due to a single chain induced chirality of the conjugated thiophene backbone upon interaction with the peptide. The latter property is highly dependent on electrostatic interactions between the peptide and the oligothiophene, verifying that a distinct spacing of the carboxyl groups along the thiophene backbone is a major chemical determinant for having a hybrid material with distinct optoelectronic properties. The necessity of the electrostatic interaction between specific carboxyl functionalities along the thiophene backbone and the lysine residues of the peptide, as well as the induced circular dichroism of the thiophene backbone, was also confirmed by theoretical calculations. We foresee that our findings will aid in designing optoelectronic materials with dynamic architectonical precisions as well as offer the possibility to create the next generation of materials for organic electronics and organic bioelectronics.
机译:由于它们在电子设备,生物传感器和人造酶中使用的潜力,手性光电材料的发展具有很大的兴趣。在此,我们报告了由阳离子合成肽的非共价自组装产生的光电材料的手性光学性质和架构布置,以及五种化学限定的阴离子五聚体寡核蛋白。肽 - 低聚噻吩杂交材料在与肽相互作用时,在缀合的噻吩骨架的单链诱导的手持式上观察到的PI-PI *过渡区域中的三维有序螺旋结构和光学活性。后一种特性高度依赖于肽和低噻吩之间的静电相互作用,验证羧基沿噻吩骨架的不同间隔是具有不同光电性质的混合材料的主要化学决定因素。通过理论计算,还通过理论计算,还通过理论计算确认了沿噻吩骨架和肽的赖氨酸骨架和肽的赖氨酸残基之间的特定羧基官能团的静电相互作用,以及诱导的噻吩骨架的圆形二色性。我们预见我们的调查结果将有助于设计具有动态建筑精密的光电材料,并提供为有机电子和有机生物电体的下一代材料创造下一代材料。

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  • 来源
    《Macromolecules》 |2017年第18期|共9页
  • 作者单位

    Linkoping Univ Div Mol Phys Dept Phys Chem &

    Biol SE-58183 Linkoping Sweden;

    Linkoping Univ Div Mol Phys Dept Phys Chem &

    Biol SE-58183 Linkoping Sweden;

    Linkoping Univ Div Chem Dept Phys Chem &

    Biol SE-58183 Linkoping Sweden;

    Linkoping Univ Div Chem Dept Phys Chem &

    Biol SE-58183 Linkoping Sweden;

    KTH Royal Inst Technol Sch Biotechnol Div Theoret Chem &

    Biol SE-10691 Stockholm Sweden;

    KTH Royal Inst Technol Sch Biotechnol Div Theoret Chem &

    Biol SE-10691 Stockholm Sweden;

    Linkoping Univ Div Mol Phys Dept Phys Chem &

    Biol SE-58183 Linkoping Sweden;

    Linkoping Univ Div Chem Dept Phys Chem &

    Biol SE-58183 Linkoping Sweden;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 高分子化学(高聚物);
  • 关键词

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