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一种通过主客体化学相互作用制备的水溶性引发剂,用于通过双光子聚合进行三维水凝胶的微加工。

A water soluble initiator prepared through host-guest chemical interaction for microfabrication of 3D hydrogels via two-photon polymerization.

作者信息

Xing Jinfeng, Liu Jinhao, Zhang Tingbin, Zhang Ling, Zheng Meiling, Duan Xuanming

机构信息

Department of Polymer Science and Engineering, School of Chemical Engineering and Technology, Tianjin University, Tianjin 300072, P. R. China.

出版信息

J Mater Chem B. 2014 Jul 21;2(27):4318-4323. doi: 10.1039/c4tb00414k. Epub 2014 Jun 6.

Abstract

Hydrogels with a precise 3D configuration (3D hydrogels) are required for a number of biomedical applications such as tissue engineering and drug delivery. Two-photon polymerization (TPP) is an advanced method to fabricate 3D hydrogels. However, TPP of 3D hydrogels has been challenged by the lack of TPP initiators with high efficiency in aqueous medium. In this study, a water soluble TPP initiator (WI) with high fabrication efficiency was prepared by combining hydrophobic 2,7-bis(2-(4-pentaneoxy-phenyl)-vinyl)anthraquinone (N) with a C symmetrical structure and 2-hydroxypropyl-β-cyclodextrins through host-guest chemical interaction. Both one and two-photon optical properties of WI have been investigated. In aqueous medium, WI showed a two-photon absorption cross-section of around 200 GM at the wavelength of 780 nm which was much higher compared with those of commercial initiators. The threshold energy of TPP for the resin with WI as a photoinitiator (the molar ratio of N in resin is 0.03%) was 8.6 mW. 3D hydrogels with a woodpile microstructure were further fabricated by using an average power of 9.7 mW and a scanning speed of 30 μm s.

摘要

许多生物医学应用(如组织工程和药物递送)都需要具有精确三维结构的水凝胶(3D水凝胶)。双光子聚合(TPP)是制备3D水凝胶的一种先进方法。然而,3D水凝胶的TPP受到水相中缺乏高效TPP引发剂的挑战。在本研究中,通过将具有C对称结构的疏水性2,7-双(2-(4-戊氧基苯基)-乙烯基)蒽醌(N)与2-羟丙基-β-环糊精通过主客体化学相互作用相结合,制备了一种具有高制备效率的水溶性TPP引发剂(WI)。对WI的单光子和双光子光学性质都进行了研究。在水介质中,WI在780 nm波长处的双光子吸收截面约为200 GM,与市售引发剂相比要高得多。以WI作为光引发剂的树脂(树脂中N的摩尔比为0.03%)的TPP阈值能量为8.6 mW。通过使用9.7 mW的平均功率和30 μm s的扫描速度,进一步制备了具有木堆微结构的3D水凝胶。

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