Li Ying, Chen Hongmei, Liu Dian, Wang Wenxi, Liu Ye, Zhou Shaobing
Key Laboratory of Advanced Technologies of Materials, Ministry of Education, School of Materials Science and Engineering, Southwest Jiaotong University, Chengdu, Sichuan 610031, People's Republic of China.
ACS Appl Mater Interfaces. 2015 Jun 17;7(23):12988-99. doi: 10.1021/acsami.5b02940. Epub 2015 Jun 2.
In this study, we developed a pH-responsive shape-memory polymer nanocomposite by blending poly(ethylene glycol)-poly(ε-caprolactone)-based polyurethane (PECU) with functionalized cellulose nanocrystals (CNCs). CNCs were functionalized with pyridine moieties (CNC-C6H4NO2) through hydroxyl substitution of CNCs with pyridine-4-carbonyl chloride and with carboxyl groups (CNC-CO2H) via 2,2,6,6-tetramethyl-1-piperidinyloxy (TEMPO) mediated surface oxidation, respectively. At a high pH value, the CNC-C6H4NO2 had attractive interactions from the hydrogen bonding between pyridine groups and hydroxyl moieties; at a low pH value, the interactions reduced or disappeared due to the protonation of pyridine groups, which are a Lewis base. The CNC-CO2H responded to pH variation in an opposite manner. The hydrogen bonding interactions of both CNC-C6H4NO2 and CNC-CO2H can be readily disassociated by altering pH values, endowing the pH-responsiveness of CNCs. When these functionalized CNCs were added in PECU polymer matrix to form nanocomposite network which was confirmed with rheological measurements, the mechanical properties of PECU were not only obviously improved but also the pH-responsiveness of CNCs could be transferred to the nanocomposite network. The pH-sensitive CNC percolation network in polymer matrix served as the switch units of shape-memory polymers (SMPs). Furthermore, the modified CNC percolation network and polymer molecular chains also had strong hydrogen bonding interactions among hydroxyl, carboxyl, pyridine moieties, and isocyanate groups, which could be formed or destroyed through changing pH value. The shape memory function of the nanocomposite network was only dependent on the pH variation of the environment. Therefore, this pH-responsive shape-memory nancomposite could be potentially developed into a new smart polymer material.
在本研究中,我们通过将聚(乙二醇)-聚(ε-己内酯)基聚氨酯(PECU)与功能化纤维素纳米晶体(CNC)共混,制备了一种pH响应型形状记忆聚合物纳米复合材料。通过用吡啶-4-碳酰氯对CNC进行羟基取代,使CNC用吡啶部分(CNC-C6H4NO2)功能化,并分别通过2,2,6,6-四甲基-1-哌啶氧基(TEMPO)介导的表面氧化使其带有羧基(CNC-CO2H)。在高pH值下,CNC-C6H4NO2通过吡啶基团与羟基部分之间的氢键具有吸引作用;在低pH值下,由于作为路易斯碱的吡啶基团的质子化,这种相互作用减弱或消失。CNC-CO2H以相反的方式响应pH变化。通过改变pH值,CNC-C6H4NO2和CNC-CO2H的氢键相互作用都可以很容易地解离,赋予了CNC的pH响应性。当将这些功能化的CNC添加到PECU聚合物基体中形成纳米复合网络(通过流变学测量得到证实)时,PECU的机械性能不仅得到明显改善,而且CNC的pH响应性可以转移到纳米复合网络中。聚合物基体中对pH敏感的CNC渗透网络充当形状记忆聚合物(SMP)的开关单元。此外,改性的CNC渗透网络与聚合物分子链在羟基、羧基、吡啶部分和异氰酸酯基团之间也具有很强的氢键相互作用,通过改变pH值可以形成或破坏这些相互作用。纳米复合网络的形状记忆功能仅取决于环境的pH变化。因此,这种pH响应型形状记忆纳米复合材料有可能被开发成一种新型智能聚合物材料。