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首页> 外文期刊>Journal of the American Chemical Society >Top-Down Preparation of Self-Supporting Supramolecular Polymeric Membranes Using Highly Selective Photocyclic Aromatization of Cis-Cisoid Helical Poly(phenylacetylene)s in the Membrane State
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Top-Down Preparation of Self-Supporting Supramolecular Polymeric Membranes Using Highly Selective Photocyclic Aromatization of Cis-Cisoid Helical Poly(phenylacetylene)s in the Membrane State

机译:使用膜态的顺式-Cisoid螺旋聚(苯基乙炔)的高选择性光环芳构化,自顶向下制备自支撑的超分子聚合物膜。

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摘要

A novel, highly selective photocyclic aromatization (SCAT) of π-conjugated polymers from phenylacetylene having two hydroxyl groups to exclusively yield a 1,3,5-trisubstituted benzene derivative was developed, and its success was confirmed by ~1H NMR, GPC, and TOF-MS. The SCAT reaction has many unique characteristics, (1) It is a quantitative reaction: it gave only the corresponding cyclic trimer, i.e., a 1,3,5-trisubstituted benzene derivative, quantitatively (100%). No byproducts were produced under the best conditions. (2) It is an intramolecular reaction: it occurred between three adjacent monomer units in one macromolecule. (3) It is a stereospecific and topochemical or template reaction: the reactivity strongly depended on the configuration and conformation of the starting polymer substrates. (4) It is a photoreaction: high selectivity (100%) was observed only by the use of visible light irradiation, not by heating. (5) It is a solid-state reaction: high selectivity (100%) was observed only in the solid state, not in solution. In addition, (6) the resulting cyclic trimers could form a self-supporting membrane, despite their low molecular weights. This new approach resulted in a new class of supramolecular polymers consisting of a 1,3,5-trisubstituted benzene derivative, numbers of which were linearly linked by hydrogen bonds and stacked benzene derivatives. Since SCAT has such high selectivities and is useful for the preparation of a self-supporting supramolecular polymer membrane, many applications can be expected.
机译:从具有两个羟基的苯乙炔中,π-共轭聚合物的新型高选择性光环芳构化(SCAT)得以开发,它仅产生1,3,5-三取代苯衍生物,并通过〜1H NMR,GPC和TOF-MS。 SCAT反应具有许多独特的特征,(1)它是定量反应:它仅定量地给出(100%)相应的环状三聚体,即1,3,5-三取代苯衍生物。在最佳条件下不会产生副产物。 (2)是分子内反应:它发生在一个大分子中的三个相邻单体单元之间。 (3)这是立体定向和拓扑化学或模板反应:反应性强烈取决于起始聚合物底物的构型和构象。 (4)是光反应:仅通过使用可见光照射而不是通过加热观察到高选择性(100%)。 (5)是固态反应:仅在固态而不在溶液中观察到高选择性(100%)。此外,(6)所得的环状三聚体尽管分子量低,但仍可形成自支撑膜。这种新方法产生了由1,3,5-三取代苯衍生物组成的新型超分子聚合物,其数量通过氢键和堆积的苯衍生物线性连接。由于SCAT具有如此高的选择性,并且可用于制备自支撑超分子聚合物膜,因此可以期待许多应用。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2013年第2期|602-605|共4页
  • 作者单位

    Polymer Materials Research Center and Key Laboratory of Superlight Materials & Surface Technology, Ministry of Education, College of Materials Science and Chemical Engineering, Harbin Engineering University, Harbin 150001, China;

    Materials Science and Engineering, Kitami Institute of Technology, 165 Koen-cho, Kitami, Hokkaido 090-8507, Japan;

    Department of Chemistry and Chemical Engineering, Graduate School of Science and Technology, and Center for Transdisciplinary Research, Niigata University, Ikarashi 2-8050, Nishi-ku, Niigata 950-2181, Japan;

    Department of Chemistry and Chemical Engineering, Graduate School of Science and Technology, and Center for Transdisciplinary Research, Niigata University, Ikarashi 2-8050, Nishi-ku, Niigata 950-2181, Japan;

    Department of Applied Science, Faculty of Science, Kochi University, 2-5-1 Akebono-cho, Kochi 780-8520, Japan;

    Department of Chemistry and Chemical Engineering, Graduate School of Science and Technology, and Center for Transdisciplinary Research, Niigata University, Ikarashi 2-8050, Nishi-ku, Niigata 950-2181, Japan;

    Department of Chemistry and Chemical Engineering, Graduate School of Science and Technology, and Center for Transdisciplinary Research, Niigata University, Ikarashi 2-8050, Nishi-ku, Niigata 950-2181, Japan;

    Department of Chemistry and Chemical Engineering, Graduate School of Science and Technology, and Center for Transdisciplinary Research, Niigata University, Ikarashi 2-8050, Nishi-ku, Niigata 950-2181, Japan;

    Department of Chemistry and Chemical Engineering, Graduate School of Science and Technology, and Center for Transdisciplinary Research, Niigata University, Ikarashi 2-8050, Nishi-ku, Niigata 950-2181, Japan;

    Department of Chemistry and Chemical Engineering, Graduate School of Science and Technology, and Center for Transdisciplinary Research, Niigata University, Ikarashi 2-8050, Nishi-ku, Niigata 950-2181, Japan;

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