Wang Hai-Juan, Zhou Wen-Hui, Yin Xiao-Fei, Zhuang Zhi-Xia, Yang Huang-Hao, Wang Xiao-Ru
Qingdao Key Laboratory of Analytical Technology Development, The First Institute of Oceanography, SOA, Qingdao, 266061, PR China.
J Am Chem Soc. 2006 Dec 20;128(50):15954-5. doi: 10.1021/ja065116v.
In this report, we describe the synthesis of a molecularly imprinted polymer (MIP) nanotube membrane, using a porous anodic alumina oxide (AAO) membrane by surface-initiated atom transfer radical polymerization (ATRP). The use of a MIP nanotube membrane in chemical separations gives the advantage of high affinity and selectivity. Furthermore, because the molecular imprinting technique can be applied to different kinds of target molecules, ranging from small organic molecules to peptides and proteins, such MIP nanotube membranes will considerably broaden the application of nanotube membranes in chemical separations and sensors. This report also shows that the ATRP route is an efficient procedure for the preparation of molecularly imprinted polymers. Furthermore, the ATRP route works well in its formation of MIP nanotubes within a porous AAO membrane. The controllable nature of ATRP allows the growth of a MIP nanotube with uniform pores and adjustable thickness. Thus, using the same route, it is possible to tailor the synthesis of MIP nanotube membranes with either thicker MIP nanotubes for capacity improvement or thinner nanotubes for efficiency improvement.
在本报告中,我们描述了通过表面引发原子转移自由基聚合(ATRP),利用多孔阳极氧化铝(AAO)膜合成分子印迹聚合物(MIP)纳米管膜的过程。在化学分离中使用MIP纳米管膜具有高亲和力和选择性的优势。此外,由于分子印迹技术可应用于从小有机分子到肽和蛋白质等不同种类的目标分子,此类MIP纳米管膜将极大地拓宽纳米管膜在化学分离和传感器中的应用。本报告还表明,ATRP路线是制备分子印迹聚合物的有效方法。此外,ATRP路线在多孔AAO膜内形成MIP纳米管方面效果良好。ATRP的可控性使得能够生长出具有均匀孔径和可调节厚度的MIP纳米管。因此,使用相同的路线,可以定制合成MIP纳米管膜,制备出用于提高容量的较厚MIP纳米管或用于提高效率的较薄纳米管。