Pena-Francesch Abdon, Montero Laura, Borrós Salvador
Grup d'Enginyeria de Materials, Institut Químic de Sarrià-Universitat Ramon Llull , Via Augusta 390, 08017 Barcelona, Spain.
Langmuir. 2014 Jun 24;30(24):7162-7. doi: 10.1021/la5003594. Epub 2014 Jun 11.
Using the iCVD (initiated chemical vapor deposition) polymerization technique, we generated a library of thermosensitive thin film hydrogels in the physiological temperature range. The library shows how a specific hydrogel with a desired temperature response can be synthesized via the copolymerization of three main components: (a) the main thermosensitive monomer, which determines the temperature range of the LCST; (b) the comonomer, which modulates the temperature according to its hydrophilic/hydrophobic behavior; and (c) the cross-linker, which determines the swelling degree and the polymer chain mobility of the resulting hydrogel. The thermosensitive thin films included in the library have been characterized by the water contact angle (WCA), revealing a switchable hydrophobic/hydrophilic behavior depending on the temperature and a decrease in the WCA with the incorporation of hydrophilic moieties. Moreover, a more accurate characterization by quartz crystal microbalance (QCM) is performed. With temperature and flow control, the switchable swelling properties of the thermosensitive thin films (due to the polymer mixture transition) can be recorded and analyzed in order to study the effects of the comonomer moieties on the lower critical solution temperature (LCST). Thus, the LCST tailoring method has been successfully used in this paper, and thermoresponsive thin films (50 nm in thickness) have been deposited by iCVD, exhibiting LCSTs in the 32-49 °C range. Due to the presented method's ability to tailor the LCST in the physiological temperature range, the developed thermoresponsive films present potential biosensing and drug delivery applications in the biomedical field.
利用引发化学气相沉积(iCVD)聚合技术,我们制备了一系列在生理温度范围内的热敏薄膜水凝胶。该系列展示了如何通过三种主要成分的共聚来合成具有所需温度响应的特定水凝胶:(a)主要热敏单体,它决定了最低临界溶液温度(LCST)的温度范围;(b)共聚单体,它根据其亲水/疏水行为调节温度;(c)交联剂,它决定了所得水凝胶的溶胀程度和聚合物链的流动性。该系列中的热敏薄膜已通过水接触角(WCA)进行了表征,结果显示其疏水/亲水行为可根据温度切换,并且随着亲水性基团的引入水接触角减小。此外,还通过石英晶体微天平(QCM)进行了更精确的表征。通过温度和流量控制,可以记录和分析热敏薄膜的可切换溶胀特性(由于聚合物混合物转变),以研究共聚单体部分对最低临界溶液温度(LCST)的影响。因此,本文成功使用了LCST定制方法,并通过iCVD沉积了厚度为50 nm的热响应薄膜,其LCST在32 - 49°C范围内。由于所提出的方法能够在生理温度范围内定制LCST,所开发的热响应薄膜在生物医学领域具有潜在的生物传感和药物递送应用。