Chang Yu-Ming, Xiao Jia-Qi, Christy Jane, Wu Chih-Yu, Huang Chao-Wei, Wu Ting-Ying, Chiang Yu-Chih, Lin Tzu-Hung, Chen Hsien-Yeh
Department of Chemical Engineering, National Taiwan University, Taipei, 10617, Taiwan.
Department of Tropical Agriculture and International Cooperation, National Pingtung University of Science and Technology, Pingtung, 912301, Taiwan.
Mater Today Bio. 2022 Aug 20;16:100403. doi: 10.1016/j.mtbio.2022.100403. eCollection 2022 Dec.
A multicomponent vapour-deposited porous (MVP) coating with combined physical and biochemical properties was fabricated based on a chemical vapour sublimation and deposition process. Multiple components are used based on their natural thermodynamic properties, being volatile and/or nonvolatile, resulting in the sublimation of water vapour (from an iced template), and a simultaneous deposition process of poly--xylylene occurs upon radical polymerization into a disordered structure, forming porous coatings of MVP on various substrates. In terms of physical properties, the coating technology exhibits adjustable hydrophobicity by tuning the surface morphology by timed control of the sublimation of the iced template layer from a substrate. However, by using a nonvolatile solution during fabrication, an impregnation process of the deposited poly--xylylene on such a solution with tuning contact angles produces an MVP coating with a customizable elastic modulus based on deformation-elasticity theory. Moreover, patterning physical structures with adjustable pore size and/or porosity of the coatings, as well as modulation and compartmentalization to introduce necessary boundaries of microstructures within one MVP coating layer, can be achieved during the proposed fabrication process. Finally, with a combination of defined solutions comprised of both volatile and nonvolatile multicomponents, including functional biomolecules, growth factor proteins, and living cells, the fabrication of the resultant MVP coating serves devised purposes exhibiting a variety of biological functions demonstrated with versatility for cell proliferation, osteogenesis, adipogenesis, odontogenesis, spheroid growth of stem cells, and a complex coculture system towards angiogenesis. Multicomponent porous coating technology is produced based on vapour sublimation and deposition upon radical polymerization that overturns conventional vapour-deposited coatings, resulting in only dense thin films, and in addition, the versatility of adjusting coating physical and chemical properties by exploiting the volatility mechanism of iced solution templates and accommodation of solute substances during the fabrication process. The MVP coating and the proposed fabrication technique represent a simple approach to provide a prospective interface coating layer for materials science and are attractive for unlimited applications.
基于化学气相升华和沉积工艺制备了一种具有物理和生化特性的多组分气相沉积多孔(MVP)涂层。根据各组分的自然热力学性质,使用多种挥发性和/或非挥发性组分,导致水蒸气(来自结冰模板)升华,同时聚对二甲苯在自由基聚合形成无序结构时发生沉积过程,在各种基材上形成MVP多孔涂层。在物理性能方面,该涂层技术通过定时控制结冰模板层从基材上的升华来调节表面形态,从而实现可调节的疏水性。然而,在制备过程中使用非挥发性溶液时,基于变形弹性理论,沉积的聚对二甲苯在这种溶液上的浸渍过程以及调节接触角可产生具有可定制弹性模量的MVP涂层。此外,在所提出的制备过程中,可以实现对涂层孔径和/或孔隙率进行可调节的物理结构图案化,以及调制和分隔,以在一个MVP涂层内引入微观结构的必要边界。最后,通过将由挥发性和非挥发性多组分组成的特定溶液(包括功能性生物分子、生长因子蛋白和活细胞)相结合,所得MVP涂层的制备实现了设计目的,展现出多种生物学功能,如细胞增殖、成骨、成脂、成牙、干细胞球体生长以及针对血管生成的复杂共培养系统。多组分多孔涂层技术基于自由基聚合时的气相升华和沉积产生,颠覆了传统气相沉积涂层仅产生致密薄膜的情况,此外,通过利用结冰溶液模板的挥发性机制以及在制备过程中容纳溶质物质,能够实现对涂层物理和化学性质的灵活调节。MVP涂层和所提出的制备技术代表了一种简单的方法,可为材料科学提供一个有前景的界面涂层,具有无限的应用潜力。