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Chiral Conflict Leads to a New Relationship Between Temperature and Optical Activity

Chiral Conflict Leads to a New Relationship Between Temperature and Optical Activity
手性冲突导致温度与旋光性之间的新关系
批准号:
0316323
负责人:
Mark Green
金额:
$0.0万
依托单位国家:
美国
项目类别:
Continuing grant
财政年份:
2003
资助国家:
美国
项目状态:
已结题
起止时间:
2003-07-15 至 2009-06-30

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中文摘要
翻译
在化学系有机动力学项目和材料研究部聚合物项目的支持下,纽约理工大学的Mark Green教授将继续开展一项研究项目,开发新的方法来控制温度与液晶光学性质之间的关系,这种关系是由不同结构对映体之间的竞争产生的,以控制聚合物的螺旋感。与上述液晶性质一致的材料将通过合成具有一对随机分散的对映体高度富集但具有不同结构并且相互竞争以控制聚合物的螺旋感的垂坠基团的螺旋形成聚合物而获得。这是因为每个手性基团对自由能项的温度依赖性是不同的。根据统计物理理论,可以证明,由合成决定的相互竞争的手性基团的比例,固定了螺旋感觉均匀分布的温度。由这种聚合物形成溶致液晶产生一系列材料,其中向列相将在特定的预定温度下形成,而在此温度以上和以下,随着温度偏离向列相温度,将出现相反意义的胆固醇相。提出通过实验来获得聚合物分子内手性相互作用和衍生液晶分子间手性相互作用的新信息。此外,最近观察到胆甾溶性液晶与适当的荧光特性的染料掺入产生激光,化学部的有机和大分子化学项目和材料研究部的聚合物项目支持纽约理工大学的Mark Green教授,他将尝试将多异氰酸酯的基本发现扩展到各种螺旋形成的聚合物,包括聚乙炔、肽和肽核酸。这将涉及跨学科的研究生培训,其中将涉及立体化学,聚合物化学,液晶和光学。这些结果可能会导致独特的想法,甚至是测量温度的设备,这是所有技术和生活的基础。由于温度相关液晶产生的美丽色彩引起了小学生的兴趣,因此格林教授计划向博物馆等机构进行解释性演示。这项工作将包括与新泽西州的一家初创公司、一家政府实验室、其他学术机构和日本的科学家合作。
英文摘要
With the support of the Organic Dynamics Program in the Chemistry Division and the Polymer Program in the Division of Materials Research, Professors Mark Green at Polytechnic University of New York will continue a research program to develop new ways to control the relationship between temperature and the optical properties of liquid crystals that arise from the competition between structurally different enantiomers to control the helical sense of a polymer. A material consistent with the liquid crystal properties noted above will be obtained by synthesis of a helical forming polymer with a pair of randomly dispersed pendant groups that are enantiomerically highly enriched but of different structure and which are competing to control the helical sense of the polymer. This arises from the fact that the temperature dependence for the free energy term favoring one or the other helical sense differs for each of the chiral groups. Based on statistical physical theory it can be shown that the proportion of the competing chiral groups, determined by synthesis, fixes the temperature at which the helical senses are equally populated. Formation of lyotropic liquid crystals from such polymers yields a series of materials in which a nematic phase will be formed at a unique predetermined temperature while above and below this temperature cholesteric phases of opposite sense will arise with tightening pitch as the temperature deviates from the nematic temperature. Experiments are proposed to yield new kinds of information on intramolecular chiral interactions in the polymer and intermolecular chiral interactions in the derived liquid crystal. Moreover, the recent observation that cholesteric lyotropic liquid crystals with incorporated dyes of appropriate fluorescence characteristics give rise to lasing, opens the possibility of producing lasers with unprecedented temperature dependent and circular polarization properties..The Organic and Macromolecular Chemistry Program in the Chemistry Division and the Polymer Program in the Division of Materials Research supports Professor Mark Green at Polytechnic University of New York who will attempt to extend basic findings in polyisocyanates to a variety of helical forming polymers including polyacetylenes, peptides and peptide nucleic acids. This will involve the interdisciplinary training of graduate students, which will involve stereochemistry, polymer chemistry, liquid crystals and optics. The results may lead to unique ideas and even devices for measuring temperature, a property that is fundamental to all technology and life. The beautiful colors arising from the temperature dependent liquid crystals have been shown to intrigue elementary school students so Professor Green is planning to approach organizations such as museums to present explanatory demonstrations. The work will involve collaborations with a start-up company in New Jersey, a government laboratory, with scientists in other academic institutions and also in Japan.
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