Venkatesh R Bharath, Manohar Neha, Qiang Yiwei, Wang Haonan, Tran Hong Huy, Kim Baekmin Q, Neuman Anastasia, Ren Tian, Fakhraai Zahra, Riggleman Robert A, Stebe Kathleen J, Turner Kevin, Lee Daeyeon
Department of Chemical and Biomolecular Engineering, University of Pennsylvania, Philadelphia, Pennsylvania 19104, USA; email:
Department of Materials Science and Engineering, University of Pennsylvania, Philadelphia, Pennsylvania 19104, USA; email:
Annu Rev Chem Biomol Eng. 2021 Jun 7;12:411-437. doi: 10.1146/annurev-chembioeng-101220-093836.
Polymer-infiltrated nanoparticle films (PINFs) are a new class of nanocomposites that offer synergistic properties and functionality derived from unusually high fractions of nanomaterials. Recently, two versatile techniques,capillary rise infiltration (CaRI) and solvent-driven infiltration of polymer (SIP), have been introduced that exploit capillary forces in films of densely packed nanoparticles. In CaRI, a highly loaded PINF is produced by thermally induced wicking of polymer melt into the nanoparticle packing pores. In SIP, exposure of a polymer-nanoparticle bilayer to solvent vapor atmosphere induces capillary condensation of solvent in the pores of nanoparticle packing, leading to infiltration of polymer into the solvent-filled pores. CaRI/SIP PINFs show superior properties compared with polymer nanocomposite films made using traditional methods, including superb mechanical properties, thermal stability, heat transfer, and optical properties. This review discusses fundamental aspects of the infiltration process and highlights potential applications in separations, structural coatings, and polymer upcycling-a process to convert polymer wastes into useful chemicals.
聚合物渗透纳米颗粒薄膜(PINFs)是一类新型纳米复合材料,具有源自高比例纳米材料的协同特性和功能。最近,引入了两种通用技术,即毛细管上升渗透(CaRI)和聚合物溶剂驱动渗透(SIP),它们利用了紧密堆积纳米颗粒薄膜中的毛细管力。在CaRI中,通过聚合物熔体热诱导芯吸进入纳米颗粒堆积孔中制备出高负载的PINF。在SIP中,聚合物 - 纳米颗粒双层暴露于溶剂蒸气气氛中会导致溶剂在纳米颗粒堆积孔中发生毛细管凝聚,从而使聚合物渗透到充满溶剂的孔中。与使用传统方法制备的聚合物纳米复合薄膜相比,CaRI/SIP PINFs具有优异的性能,包括出色的机械性能、热稳定性、热传递和光学性能。本综述讨论了渗透过程的基本方面,并重点介绍了在分离、结构涂层和聚合物升级回收(将聚合物废物转化为有用化学品的过程)中的潜在应用。