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首页> 外文期刊>Colloids and Surfaces, A. Physicochemical and Engineering Aspects >Controllable thermochromic and phase transition behaviors of polydiacetylene/zinc(II) ion/zinc oxide nanocomposites via photopolymerization: An insight into the molecular level
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Controllable thermochromic and phase transition behaviors of polydiacetylene/zinc(II) ion/zinc oxide nanocomposites via photopolymerization: An insight into the molecular level

机译:通过光聚合的多二乙烯/锌(II)离子/氧化锌纳米复合材料的可控热致变色和相变行为:洞察分子水平

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Reversible thermochromic polydiacetylene/zinc(II) ion/zinc oxide (PDA/Zn2+/ZnO) nanocomposites with a wide range of color-transition temperature have been prepared by varying photopolymerization time. This contribution presents our continuation study investigating into the molecular origins of this behavior. Infrared spectroscopy is utilized to investigate interfacial interactions of the systems while the conformation of PDA conjugated backbone is probed by Raman spectroscopy. X-ray diffraction explores molecular packing within the nanocomposites. We have found that the increase of photopolymerization time induces the relaxation of PDA backbone into a newly observed state indicated by systematic growth of new vibrational modes of CC and C=C bonds. This relaxation process results in the decrease of reversible blue-to-purple color-transition temperature. In contrast, the increase of backbone length with photopolymerization time causes an opposite trend of the irreversible purple-to-red color transition observed at relatively high temperature region. Differential scanning calorimetry detects two distinct phase transitions corresponding to the melting of alkyl side chains and rigid backbone. These melting temperatures vary with photopolymerization time consistent with the variation of color-transition temperature.
机译:通过不同的光聚合时间制备具有宽范围色转变温度的可逆热致变色聚二乙烯/锌(II)离子/氧化锌(PDA / Zn2 + / ZnO)纳米复合材料。这一贡献提出了我们的持续研究调查这种行为的分子起源。红外光谱分辨率用于研究系统的界面相互作用,同时通过拉曼光谱法探测PDA共轭骨架的构象。 X射线衍射探讨纳米复合材料内的分子包装。我们发现光聚合时间的增加诱导PDA骨架的弛豫进入新观察到的状态,所述新观察状态通过系统生长的CC和C = C键的新振动模式表示。这种弛豫过程导致可逆蓝紫色色转变温度降低。相反,具有光聚合时间的骨架长度的增加导致在相对高温区域观察到的不可逆紫色到红颜色转变的相反趋势。差分扫描量热法检测与烷基侧链和刚性骨架的熔化相对应的两个不同的相变。这些熔化温度随着色度转变温度的变化而符合光聚合时间。

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