Hassan Zahid, Varadharajan Divya, Zippel Christoph, Begum Salma, Lahann Jörg, Bräse Stefan
Institute of Organic Chemistry (IOC), Karlsruhe Institute of Technology (KIT), Fritz-Haber-Weg 6, 76131, Karlsruhe, Germany.
Institute of Functional Interfaces (IFG), Karlsruhe Institute of Technology (KIT), Hermann-von Helmholtz-Platz 1, D-76344, Eggenstein-Leopoldshafen, Germany.
Adv Mater. 2022 Sep;34(37):e2201761. doi: 10.1002/adma.202201761. Epub 2022 Aug 9.
Molecular structuring of soft matter with precise arrangements over multiple hierarchical levels, especially on polymer surfaces, and enabling their post-synthetic modulation has tremendous potential for application in molecular engineering and interfacial science. Here, recent research and developments in design strategies for structurally controlled polymer surfaces via cyclophane-based chemical vapor deposition (CVD) polymerization with precise control over chemical functionalities and post-CVD fabrication via orthogonal surface functionalization that facilitates the formation of designable biointerfaces are summarized. Particular discussion about innovative approaches for the templated synthesis of shape-controlled CVD polymers, ranging from 1D to 3D architecture, including inside confined nanochannels, nanofibers/nanowires synthesis into an anisotropic media such as liquid crystals, and CVD polymer nanohelices via hierarchical chirality transfer across multiple length scales is provided. Aiming at multifunctional polymer surfaces via CVD copolymerization of multiple precursors, the structural and functional design of the fundamental [2.2]paracyclophane (PCP) precursor molecules, that is, functional CVD monomer chemistry is also described. Technologically advanced and innovative surface deposition techniques toward topological micro- and nanostructuring, including microcontact printing, photopatterning, photomask, and lithographic techniques such as dip-pen nanolithography, showcasing research from the authors' laboratories as well as other's relevant important findings in this evolving field are highlighted that have introduced new programmable CVD polymerization capabilities. Perspectives, current limitations, and future considerations are provided.
在多个层次上具有精确排列的软物质分子结构,特别是在聚合物表面,并能够进行合成后调制,在分子工程和界面科学中具有巨大的应用潜力。本文总结了通过基于环芳的化学气相沉积(CVD)聚合精确控制化学功能来设计结构可控聚合物表面的策略,以及通过促进可设计生物界面形成的正交表面功能化进行CVD后制备的最新研究进展。特别讨论了从一维到三维结构的形状可控CVD聚合物的模板合成创新方法,包括在受限纳米通道内、在向列相液晶等各向异性介质中合成纳米纤维/纳米线,以及通过多尺度层次手性转移合成CVD聚合物纳米螺旋。针对通过多种前驱体的CVD共聚制备多功能聚合物表面,还描述了基本的[2.2]对环芳(PCP)前驱体分子的结构和功能设计,即功能性CVD单体化学。强调了包括微接触印刷、光图案化、光掩模和浸笔纳米光刻等光刻技术在内的先进且创新的表面沉积技术,展示了作者实验室的研究以及该领域其他相关重要发现,这些发现引入了新的可编程CVD聚合能力。还提供了观点、当前的局限性和未来的考虑因素。