标题: 以多点式氢键为基础在功能性高分子的应用( I )
Application of Functional Polymers Based on Multiple-Point Hydrogen Bonding( I )
作者: 张丰志
CHANG FENG-CHIH
国立交通大学应用化学系(所)
关键字: 超分子;氢键;自组装;奈米复合材料;发光二极体;Supramolecular;Hydrogen bond;Self-assembly;Nanocomposites;LED
公开日期: 2012
摘要: 本计划将延续个人实验室在超分子作用力的基础研究并导入更强的多点式氢键
作用力,调控其在高分子奈米材料的自组装现象讨論及应用方向,而其中包含了
三年的研究,分别描述如下:
第一年、从基础研究到非共价系统的超分子識别特性,欲建造具類似嵌段式高分
子排列行为(block copolymer-like clusters),至今仍存在许多的挑战。因此,我们
将结合具结构均一性的多面体聚矽氧烷(POSS)及聚胜肽(polypeptide)來制备以非
共价方式键结之新型超分子结构,本研究将着重在导入氢键作用力后对固态及液
态之探讨,并进一步探索自组装的型态与机制。
第二年、将藉由多点式氢键导入至纤维/奈米探管复合材料中,进而提升光学效
能。我们近年來着重在多点式氢键作用力之基础研究上,若将氢键之特性导入高
分子复合材料之研究中,预期将可有以助于提升其探管分散性、光电特性及热性
质。此外,我们将进一步应用在光电元件和金属離子吸附等領域上。
第三年、我们将以超分子型的共轭聚合物及POSS为主体材料。这些材料能够透
过互补氢键作用力形成球狀的分子结构,因此能有效大幅提升其光学和电致发光
之性能。本此提案,我们也将进一步扩大至不同光电領域上,如高性能发光二极
管(LED)和可绕式的元件,并将超分子型共轭高分子拓展至LED元件中的电动
传输、发光、电动阻挡及电子传输层。
In this project, we propose a new series of multiple hydrogen-bonded polymers
and discuss the self-assembly behaviors by adjusting the strength of supramolecular
interactions. These new materials will be employed to several fields and results of all
anticipated research topics are summarized in the following:
(I) Supramolecular assembly of designed α-helical polypeptide-based
nanostructures: The first year, we combined the well-defined macromolecular
architectures of polyhedral oligomeric silsesquioxane (POSS) and polypeptide to
generate polymeric building blocks having distinct 3-D shapes for the
self-assembling of supramolecular structures. There remain many aspects of
forming block copolymer-like clusters transferred from binding and recognition
events in fundamental research into non-covalent systems. Hence, this system is
focusing on the hydrogen bonding effect with concomitant changes in bulk and
solution states and further understands the morphology and mechanism of
polymer self-assembly.
(II) Hydrogen-bonding in polymer/carbon nanotube blends: The second year,
the utilization of multiple hydrogen bonding events between the fiber matrix and
carbon nanotubes (CNTs) is promising for further improvement in electronic
performance. In the last three years, we concentrated on multiple hydrogen
bonded interactions. Therefore, we would like to extend our previous experience
on supramolecular interaction to the area of polymer nanocomposites. In earlier
stage, we focus on preparing a series of supramolecular polymer/CNTs and further
investigations the influence of suramolecular concentration, dispersion, and
hydrogen bonding in functionalized CNT composites. Recently, we will explore
further applications in electronic device and metal ion adsorption.
(III) Supramolecular π-conjugated materials: The third year, we would like to
prepare DNA-based conjugated polymer and supramolecular POSS, respectively.
These materials are able to interact with each other to form a star-like structure
through complementary pairing and exhibits improved solution processing, optical
and electroluminescence properties. In this project, now we would like to further
extend our studies for applications in areas such as high performance
light-emitting diode (LED) and flexible device. It would provide positive
contribution on preparation of supramolecular conjugated polymer to serve as
hole-transporting, light-emitting, hole-blocking, and electron-transporting layers
in LED devices.
官方说明文件#: NSC101-2221-E009-030
URI: http://hdl.handle.net/11536/98518
https://www.grb.gov.tw/search/planDetail?id=2593799&docId=392336
显示于类别:Research Plans