离散低聚氨基甲酸酯表现出序列依赖的荧光发射和猝灭

IF 4.7 Q1 POLYMER SCIENCE
Emily A. Hoff, Richard K. Weigel, Adithya Rangamani and Christopher A. Alabi*, 
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引用次数: 2

摘要

生物聚合物的编码精度使一些简单的单体(例如核酸中的四个核苷酸)能够产生复杂的大分子结构,实现无数功能。合成聚合物和低聚物的类似空间精度可以用来制造具有丰富和可调性质的大分子和材料。迭代固相和溶液相合成策略的最新令人兴奋的进展导致了离散大分子的可扩展生产,这反过来又使序列依赖性材料性质的研究成为可能。我们最近的一个可扩展的合成策略的例子是使用廉价的基于香草醛的单体来产生序列定义的低聚氨基甲酸酯(SeDOCs),这使得能够制备具有不同热性能和机械性能的异构低聚物。我们发现,单分子SeDOCs也表现出从溶液到固相持续的序列依赖性动态荧光猝灭。我们详细介绍了这一现象的证据,并表明荧光发射特性的变化取决于大分子构象,而大分子构象又是由序列驱动的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Discrete Oligocarbamates Exhibit Sequence-Dependent Fluorescence Emission and Quenching

Discrete Oligocarbamates Exhibit Sequence-Dependent Fluorescence Emission and Quenching

The encoded precision of biological polymers enables a few simple monomers (e.g., four nucleotides in nucleic acids) to create complex macromolecular structures that accomplish a myriad of functions. Similar spatial precision in synthetic polymers and oligomers can be harnessed to create macromolecules and materials with rich and tunable properties. Recent exciting advances in iterative solid- and solution-phase synthetic strategies have led to the scalable production of discrete macromolecules, which in turn has enabled the study of sequence-dependent material properties. Our recent example of a scalable synthetic strategy using inexpensive vanillin-based monomers to create sequence-defined oligocarbamates (SeDOCs) enabled the preparation of isomeric oligomers with different thermal and mechanical properties. We show that unimolecular SeDOCs also exhibit sequence-dependent dynamic fluorescence quenching that persists from solution to the solid phase. We detail the evidence for this phenomenon and show that changes in fluorescence emissive properties are dependent on macromolecular conformation, which in turn is driven by sequence.

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CiteScore
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