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纳米二氧化硅是一种性能优异、应用广泛的无机纳米材料.介绍了纳米二氧化硅的主要制备方法(气相法、溶胶-凝胶法、沉淀法、反相微乳液法)的原理及优缺点,并全面综述了其表面物理和化学修饰改性的主要方法,最后展望了纳米二氧化硅的发展前景.

参考文献

[1] 童忠良.纳米化工产品生产技术[M].北京:化学工业出版社,2006
[2] 徐国财.纳米科技导论[M].北京:高等教育出版社,2005
[3] 亓昭英.气相法白炭黑的生产技术和市场前景[J].河南化工,2002(03):3.
[4] 段先健;王跃林;杨本意 等.一种高分散纳米二氧化硅的制备方法[P].CN,02149782.6,2003-06-11.
[5] St(o)ber W;Fink A;Bohn E .Controlled growth of monodisperse silica spheres in micron size range[J].Journal of Colloid and Interface Science,1968,26:62.
[6] 张宁,熊裕华.溶胶-凝胶法制备纳米二氧化硅[J].南昌大学学报(理科版),2003(03):267-269.
[7] 赵丽,余家国,程蓓,赵修建.单分散二氧化硅球形颗粒的制备与形成机理[J].化学学报,2003(04):562-566.
[8] 杨儒,张广延,李敏,江南.超临界干燥制备纳米SiO2粉体及其性质[J].硅酸盐学报,2005(03):281-286.
[9] 许珂敬,杨新春,段贤峰,宋志涛,王现波.多孔纳米SiO2微粉的制备与表征[J].硅酸盐通报,2001(01):58-62.
[10] 刘立泉,何永,张崇,李大成.纳米二氧化硅粉体的制备[J].电子元件与材料,2000(04):28-29.
[11] Arriagada F J;Osseo-Asarek .Synthesis of nanosize silica in a nonionic water-in-oil microemulsion:Effects of the water/surfactant molar ratio and ammonia concentration[J].Journal of Colloid and Interface Science,1999,211(02):210.
[12] Esquena J.;Kostarelos K.;Solans C.;Tadros TF. .PREPARATION OF NARROW SIZE DISTRIBUTION SILICA PARTICLES USING MICROEMULSIONS[J].Langmuir: The ACS Journal of Surfaces and Colloids,1997(24):6400-6406.
[13] Abarkan I;Doussineau T;Smaihi M .Tailored macro/micro structural properties of colloidal silica nanoparticles via microemulsion preparation[J].Polyhedron: The International Journal for Inorganic and Organometallic Chemistry,2006(8):1763-1770.
[14] 陈敬中;刘剑洪.纳米材料科学导论[M].北京:高等教育出版社,2006:231.
[15] Flores JC;Torres V;Popa M;Crespo D;Calderon-Moreno JM .Variations in morphologies of silver nanoshells on silica spheres[J].Colloids and Surfaces, A. Physicochemical and Engineering Aspects,2008(1):86-90.
[16] Hisao Suzuki;Kenji Yamaguchi;Hidetoshi Miyazaki .Fabrication of thermochromic composite using monodispersed VO_2 coated SiO_2 nanoparticles prepared by modified chemical solution deposition[J].Composites science and technology,2007(15/16):3487-3490.
[17] 葛奉娟,朱捷.醇酯法表面改性超细二氧化硅的研究[J].安徽理工大学学报(自然科学版),2005(04):78-80.
[18] Li XH;Cao Z;Zhang ZJ;Dang HX .Surface-modification in situ of nano-SiO2 and its structure and tribological properties[J].Applied Surface Science: A Journal Devoted to the Properties of Interfaces in Relation to the Synthesis and Behaviour of Materials,2006(22):7856-7861.
[19] Songwei Chen;Bo You;Shuxue Zhou;Limin Wu .Preparation and Characterization of Scratch and Mar Resistant Waterborne Epoxy/Silica Nanocomposite Clearcoat[J].Journal of Applied Polymer Science,2009(6):3634-3639.
[20] Tai Y L;Qian J S;Zhang Y C et al.Study of surface modification of nano-SiO2 with macromolecular coupling agent (LMPB-g-MAH)[J].Chemical Engineering Journal,2008,141:354.
[21] Prucker O.;Ruhe J. .Synthesis of poly(styrene) monolayers attached to high surface area silica gels through self-assembled monolayers of azo initiators[J].Macromolecules,1998(3):592-601.
[22] Michiel L;C M Oosterling et al.Anionic grafting of polystyrene and poly(styrene-block-isoprene) onto microparticulate silica and glass slides[J].POLYMER,1992,33(20):4394.
[23] Tsubokawa N;Kogure A .Cationic graft polymerization from ultrafine silica initiated by acylium perchlorate groups introduced onto the surface[J].Polymer Journal,1993,25(01):83.
[24] Zhou L L;Yuan W Z;Yuan J Y et al.Preparation of doubleresponsive SiO2-g-PDMAEMA nanoparticles via ATRP[J].Materials Letters,2008,62:1372.
[25] Liu C H;Pan C Y .Grafting polystyrene onto silica nanoparticles via RAFT polymerization[J].Polymer,2007,48:3679.
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