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首页> 外文期刊>Macromolecular Research >Temperature-Dependent Phase Behavior of Langmuir Films of 10,12-Pentacosadiynoic Acid at the Air/Water Interface and Its Effects on Chromatic Stability of the Polymerized Langmuir-Schaefer Films
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Temperature-Dependent Phase Behavior of Langmuir Films of 10,12-Pentacosadiynoic Acid at the Air/Water Interface and Its Effects on Chromatic Stability of the Polymerized Langmuir-Schaefer Films

机译:在空气/水界面在10,12-五戊酰基甲酸的温度依赖性相行为及其对聚合的Langmuir-Schaefer薄膜的色度稳定性的影响

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摘要

The effect of temperature on the two-dimensional phase of 10,12-pentacosadiynoic acid (PCDA) Langmuir films at the air/water interface was investigated. The temperature of the Langmuir films was precisely controlled from 5 to 50 A degrees C and their surface isotherms and in-situ visible absorption spectra were acquired. Depending on the temperature, the PCDA Langmuir films were found to be classified into a liquid-condensed (low temperatures, 5 and 25 A degrees C) and a liquid-expanded phase (high temperatures, 40 and 50 A degrees C). After polymerizing the PCDA Langmuir films with 254 nm UV light at the specific temperatures, the films were transferred to hydrophobic glass using the Langumir-Schaefer (LS) method. Upon thermal and pH stimuli, their chromatic transition characteristics were analyzed by visible spectroscopy. The liquid-condensed films were found to be more susceptible to thermal stimulus than the liquid-expanded films. The latter also showed remarkable chromatic stability against the pH in the region from 2 to 11, compared to the former. Thus, when sturdy films are required, the multilayered PCDA LS films prepared at the liquid-expanded phase are more suitable than the liquid-condensed films, and vice versa. This result is expected to be very useful for controlling the sensitivity and stability of polydiacetylene-based sensory systems simply by changing the polymerization temperature, even without synthesizing new monomers.
机译:研究了温度对空气/水界面处的10,12-五戊酰基甲酸(PCDA)Langmuir膜的二维相的影响。朗米尔膜的温度精确地控制5至50℃,并获得其表面等温线和原位可见吸收光谱。根据温度,发现PCDA Langmuir薄膜被分类为液体缩合(低温,5和25℃)和液体膨胀相(高温,40和50℃)。在特定温度下用254nm紫外线聚合PCDA朗米尔薄膜后,使用Langumir-Schaefer(LS)方法将薄膜转移到疏水玻璃中。在热和pH刺激时,通过可见光谱分析它们的色度转变特性。发现液体缩合膜比液体膨胀膜更容易受到热刺激。与前者相比,后者还表现出对2至11的pH值的显着色谱稳定性。因此,当需要坚固的薄膜时,在液体 - 膨胀相时制备的多层PCDA LS膜比液体缩合的薄膜更适合,反之亦然。该结果预计将非常有用,用于仅通过改变聚合温度来控制基于聚二乙酰基的感觉系统的灵敏度和稳定性,即使在不合成新单体的情况下也是如此。

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