首页> 外文期刊>The Journal of Organic Chemistry >Computational Design, Synthesis, and Structure Property Evaluation of 1,3-Thiazole-Based Color-Tunable Multi-heterocyclic Small Organic Fluorophores as Multifunctional Molecular Materials
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Computational Design, Synthesis, and Structure Property Evaluation of 1,3-Thiazole-Based Color-Tunable Multi-heterocyclic Small Organic Fluorophores as Multifunctional Molecular Materials

机译:基于1,3-噻唑类的颜色可调多杂环小型有机荧光团作为多官能分子材料的计算设计,合成和结构性质评价

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摘要

Probing the chemical space of luminescent organic materials built on novel cores is highly imperative for its potential to expand the horizons of advanced functional materials. Small organic fluorophores possessing therapeutic traits can contribute to theranostics. We coupled computational and classical synthetic chemistry strategies for the rational design of 5-(hetero-2-yl)-1,3-thiazoles as color-tunable fluorophore core. With the aid of DFT and TD-DFT, we prove that the multi-heterocyclic system is built on a thiazole–het core with three inherent tunable sites on thiazole (C2, C4, and C5) capable of accommodating a panoply of substituents as a multifunctional molecular materials’ platform. This de novo design offered unprecedented freedom to control strength and direction of charge transfer by varying donor–acceptor fragments. A 30-member fluorophore library built on thiazole-thiophene/furan core was accomplished using commercial reagents by a simple [4 + 1] synthesis. Structure–photophysical property studies revealed large Stokes shift, positive solvatochromism, acidochromism, and color tunability in different solvents and were rationalized using computational calculations. In vitro studies indicated 1a to be active against HL-60 cell lines, suggesting the possibility of expanding the core for theranostics. The lower values of computed hole reorganization energies indicated their potential as hole transporting materials in optoelectronics and widen the scope of these molecules as advanced functional materials.
机译:探测新型核心内置的发光有机材料的化学空间是扩大高级功能材料视野的潜力的强烈势在必行。具有治疗性状的小型有机荧光团可以促进治疗方法。我们耦合计算和经典的合成化学策略,为5-(杂-2-基)-1,3-噻唑的合理设计为可调荧光团核心。借助DFT和TD-DFT的借助,我们证明了多杂环系统基于噻唑-HET核心,其具有噻唑(C2,C4和C5)上的三个固有的可调谐位点,能够容纳一根取代基的多功能分子材料的平台。该De Novo设计通过不同的供体 - 受体碎片来控制前所未有的自由来控制充电的强度和方向。通过简单的[4 + 1]合成,使用商业试剂完成基于噻唑-噻吩/呋喃核心的30构件荧光团库。结构 - 光物理研究揭示了不同溶剂中的大型斯托克斯偏移,阳性溶剂溶解度,脱苯体,和颜色可调性,并使用计算计算合理化。体外研究表明 1A对HL-60细胞有效,表明将核心扩张的核心。计算空穴重组能量的较低值表明它们作为光电子中的空穴传输材料的潜力,并扩大了这些分子的范围,作为先进的功能材料。

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  • 来源
    《The Journal of Organic Chemistry》 |2018年第7期|共14页
  • 作者单位

    Department of Chemistry Indian Institute of Space Science and Technology Valiamala Post Thiruvananthapuram 695 547 India;

    Department of Chemistry Indian Institute of Space Science and Technology Valiamala Post Thiruvananthapuram 695 547 India;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 有机化学;
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