Shi Qihui, Liang Hongjun, Feng Dan, Wang Jianfang, Stucky Galen D
Department of Chemistry and Biochemistry, University of California, Santa Barbara, California 93106, USA.
J Am Chem Soc. 2008 Apr 16;130(15):5034-5. doi: 10.1021/ja800376t. Epub 2008 Mar 20.
A "brick-and-mortar" assembly approach for creating porous carbon and carbon/metal oxide fibers on the micron scale with well-defined pore structure and interface is presented. A series of monodisperse silica@polyacrylonitrile (PAN) and silica@metal oxide@PAN core/shell particles were synthesized by emulsion polymerization and assembled into organic-inorganic composite fibers through a simple ice-templating strategy with the assistance of polyvinyl alcohol. Porous carbon and carbon/metal oxide fibers with well-controlled pores and interfaces were created by oxidative stabilization and carbonization of composite fibers followed by removal of silica cores with hydrofluoric acid or concentrated alkali. The pore structure and the carbon/metal oxide interfaces of the fibers impart to the fibers' lightweight and potential applications in catalysis, electrochemical energy, and gas or liquid separations and storage.
本文提出了一种“实体”组装方法,用于在微米尺度上制备具有明确孔结构和界面的多孔碳和碳/金属氧化物纤维。通过乳液聚合合成了一系列单分散的二氧化硅@聚丙烯腈(PAN)和二氧化硅@金属氧化物@PAN核壳颗粒,并借助聚乙烯醇,通过简单的冰模板策略将其组装成有机-无机复合纤维。通过对复合纤维进行氧化稳定化和碳化处理,然后用氢氟酸或浓碱去除二氧化硅核,制备出具有良好可控孔结构和界面的多孔碳和碳/金属氧化物纤维。纤维的孔结构和碳/金属氧化物界面赋予了纤维轻质的特性,并使其在催化、电化学能源以及气体或液体分离与存储等领域具有潜在应用价值。