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纳米材料的量子尺寸效应、小尺寸效应、表面效应和宏观量子隧道效应使其展现出许多特有的性质,在电子、环境保护、生物医药等领域具有广阔的应用前景.模板法组装纳米材料是一种简单有效的途径.系统介绍了氧化铝、多孔硅、生物大分子、表面活性剂等6种常见模板的特点及制备机理,给出了各类方法制备纳米材料的最新进展,并展望了模板法制备纳米材料的前景.

参考文献

[1] 范胜华,李海涛,刘力虎,李耀鹏,孙会元.氧化铝模板的制备及表征[J].河北师范大学学报(自然科学版),2008(06):745-748.
[2] Gao T;Fan J C;Meng G W et al.Thin Au film with highly ordered arrays of hemispherical dots[J].Thin Solid Films,2001,401:102.
[3] Luo ZX;Yan F;Zhou XF;Yao HN .Synthesis of highly ordered Iron/Cobalt nanowire arrays in AAO templates and their structural properties[J].Materials Chemistry and Physics,2008(1):91-95.
[4] D. Crouse;Yu-Hwa Lo;A. E. Miller .Self-ordered pore structure of anodized aluminum on silicon and pattern transfer[J].Applied physics letters,2000(1):49-51.
[5] Lee SB;Mitchell DT;Trofin L;Nevanen TK;Soderlund H;Martin CR .Antibody-based bio-nanotube membranes for enantiomeric drug separations[J].Science,2002(5576):2198-2200.
[6] Xu C L;Li H;Xue T et al.Fabrication of CoPd alloy nanowire arrays on an anodic aluminum oxide/Ti/Si substrate and their enhanced magnetic properties[J].Scripta Materialia,2006,54:1605.
[7] 佘希林,袁芳,孙翠华,李建江,杨超.多孔阳极氧化铝模板法制备金属钌纳米线阵列[J].稀有金属,2009(04):548-552.
[8] Jia-yan Luo;Yong-gang Wang;Huan-ming Xiong .Ordered Mesoporous Spinel LiMn2O4 by a Soft-Chemical Process as a Cathode Material for Lithium-Ion Batteries[J].Chemistry of Materials: A Publication of the American Chemistry Society,2007(19):4791-4795.
[9] Fan S;Chapline M G;Fanklin N R et al.Self-oriented regular arrays of carbon nanotubes and their field emission properties[J].Science,1999,283(5041):512.
[10] 余勇,刘士军,李洁,陈启元.氧化钨介孔材料的制备与表征[J].物理化学学报,2009(09):1890-1894.
[11] Xiangzhi Cui;Hua Zhang;Xiaoping Dong .Electrochemical catalytic activity for the hydrogen oxidation of mesoporous WO3 and WO3/C composites[J].Journal of Materials Chemistry: An Interdisciplinary Journal dealing with Synthesis, Structures, Properties and Applications of Materials, Particulary Those Associated with Advanced Technology,2008(30):3575-3580.
[12] 唐志红,宋燕,刘朗,郭全贵,张园力.硝酸镍在模板法制备中孔炭中的作用[J].新型炭材料,2009(01):93-96.
[13] Kamata K;Lu Y;Xia Y N .Synthesis and characterization of monodispersed core-shell spherical colloids with movable cores[J].Journal of the American Chemical Society,2003,125:2384.
[14] Whitney T W;Searson P C;Jiang J S et al.Fabrication and magnetic properties of arrays of metallic nanowires[J].Science,1993,261(5126):1316.
[15] Min Lai;D.Jason Riley .Templated Electrosynthesis of Zinc Oxide Nanorods[J].Chemistry of Materials: A Publication of the American Chemistry Society,2006(9):2233-2237.
[16] 吴华涛,张颖,宁向莉,梁红莲,房喻.核-壳结构P(AM-co-MAA)-W-Ag复合微球的制备[J].物理化学学报,2008(04):646-652.
[17] Yong KT;Sahoo Y;Swihart MT;Prasad PN .Synthesis and plasmonic properties of silver and gold nanoshells on polystyrene cores of different size and of gold-silver core-shell nanostructures[J].Colloids and Surfaces, A. Physicochemical and Engineering Aspects,2006(1/3):89-105.
[18] Marc R.Knecht;Michael G.Weir;V.Sue Myers .Synthesis and Characterization of Pt Dendrimer-Encapsulated Nanoparticles:Effect of the Template on Nanoparticle Formation[J].Chemistry of Materials: A Publication of the American Chemistry Society,2008(16):5218-5228.
[19] 李国平,罗运军.紫外光辐照下以PAMAM树形分子为模板制备Ag纳米簇及光致发光性能研究[J].感光科学与光化学,2007(04):249-256.
[20] Marc R K;Joaquin C;Richard M C.Synthesis,characte-rization,and magnetic properties of dendrimer-encapsulated nickel nanoparticles containing[M].
[21] Endo T;Yoshimura T;Esumi K .Synthesis and catalytic activity of gold-silver binary nanoparticles stabilized by PAMAM dendrimer[J].Journal of Colloid and Interface Science,2005(2):602-609.
[22] Scott R W J;Datye A K;Crooks R M .Bimetallic palladium-platinum dendrimer-encapsulated catalysts[J].American Chemical Society,2003,125(13):3708.
[23] Li GP;Luo YJ .Preparation and characterization of dendrimer-templated Ag-Cu bimetallic nanoclusters[J].Inorganic Chemistry: A Research Journal that Includes Bioinorganic, Catalytic, Organometallic, Solid-State, and Synthetic Chemistry and Reaction Dynamics,2008(1):360-364.
[24] 卢文婷,罗运军,李国平,张欣茜,靳玉娟.以PAMAM树形分子为模板制备Pd纳米簇合物[J].高等学校化学学报,2009(07):1459-1463.
[25] 贺英,王均安,桑文斌,支华军,雷芝红,高利聪.高分子软模板法自组装生长ZnO纳米线及其光学性能[J].发光学报,2006(05):766-772.
[26] Braun E;Eichen Y;Sivan U.DNA-templated assembly and electrode attachment of a conducting silver wire[J].Nature,1998(391):775.
[27] Richter J.;Kirsch R.;Mertig M.;Pompe W.;Plaschke J. Schackert HK.;Seidel R. .Nanoscale palladium metallization of DNA[J].Advanced Materials,2000(7):507-510.
[28] Scott M. D. Watson;Nicholas G. Wright;Benjamin R. Horrocks;Andrew Houlton .Preparation, Characterization and Scanned Conductance Microscopy Studies of DNA-Templated One-Dimensional Copper Nanostructures[J].Langmuir: The ACS Journal of Surfaces and Colloids,2010(3):2068-2075.
[29] Xin H J;Woolley A T .DNA-templated nanotube localization[J].American Chemical Society,2003,125(29):8710.
[30] Liang H J;Angelini T E;Braun P V et al.Roles of anionic and cationic template components in biomineralization of CdS nanorods using self-assembled DNA-membrane complexes[J].American Chemical Society,2004,126:14157.
[31] Silke Behrens;Jin Wu;Wilhelm Habicht;Eberhard Unger .Silver Nanoparticle and Nanowire Formation by Microtubule Templates[J].Chemistry of Materials,2004(16):3085-3090.
[32] 熊雪良,陈坚,陈再冉,陈泽宗.生物模板法制备纳米Ni粒子的研究[J].矿冶工程,2008(03):95-98.
[33] Sonny.S.Mark;Magnus Bergkvist;Xin Yang;Esther R.Angert;Carl A.Batt .Self-Assembly of Dendrimer-Encapsulated Nanoparticle Arrays Using 2-D Microbial S-Layer Protein Biotemplates[J].Biomacromolecules,2006(6):1884-1897.
[34] 贾润平;杨俊和;吴庆生 等.活体生物膜模板法诱导控制合成硫化汞纳米网络结构[J].兰州大学学报,2007,43(02):58.
[35] Zhi Li;Sang-Wook Chung;Jwa-Min Nam;David S. Ginger;Chad A. Mirkin .Living Templates for the Hierarchical Assembly of Gold Nanoparticles[J].Angewandte Chemie International Edition,2003(20):2306-2309.
[36] 王祖鹓,张凤宝,夏宝林.TiO2超细粒子的微乳法制备、表征及性能研究[J].精细化工,2004(04):253-256,268.
[37] Zhuo Chen;Peng Zhan;Zhenlin Wang;Jianhui Zhang;Weiyi Zhang;Naiben Ming;Che Ting Chan;Ping Sheng .Two- and Three-Dimensional Ordered Structures of Hollow Silver Spheres Prepared by Colloidal Crystal Templating[J].Advanced Materials,2004(5):417-422.
[38] 杨成武,曹建新,张煜,任智丰,安媛.超临界CO2微乳液法制备纳米氧化锆[J].现代机械,2009(05):93-95.
[39] 孙建平,翁家宝,程云涛,马琳璞,欧阳志斌.反胶束软模板法合成PANI/TiO2纳米棒复合材料及其性能研究[J].光谱学与光谱分析,2009(09):2509-2513.
[40] Li T;Moon Jooho;Morone Augusto A et al.Preparation of Ag-SiO2 nanosize compositions by a reverse micelle and sol-gel technique[J].Langmuir,1999,15(13):4328.
[41] Yuasa M;Masaki T;Kida T;Shimanoe K;Yamazoe N .Nano-sized PdO loaded SnO2 nanoparticles by reverse micelle method for highly sensitive CO gas sensor[J].Sensors and Actuators, B. Chemical,2009(1):99-104.
[42] 宋吉明,张胜义,史洪伟,金葆康,沈玉华.液/液界面生长法制备一维纳米硒[J].化学通报(印刷版),2006(06):434-437.
[43] Sanjeev Kumar;Rajesh Kumar et al.Electrochemical synthesis of metallic microstructures using etched ion tracks in nuclear track filters[J].Research Communications,2004,87(05):642.
[44] 赵东林,曾宪伟,沈曾民.碳纳米管/聚苯胺纳米复合管的制备及其微波介电特性研究[J].物理学报,2005(08):3878-3883.
[45] JOSHUA GOLDBERGER;RONG FAN;PEIDONG YANG .Inorganic Nanotubes:A Novel Platform for Nanofluidics[J].Accounts of Chemical Research,2006(4):239-248.
[46] Li CP.;Sun XH.;Wong NB.;Lee CS.;Lee ST.;Teo BK. .Ultrafine and uniform silicon nanowires grown with zeolites[J].Chemical Physics Letters,2002(1/2):22-26.
[47] 徐庆红,纪雪梅,马吉山.硬模板法合成钴铁氧体微米磁管及磁性纳米粒子[J].功能材料,2009(01):13-16,19.
[48] Berry A D;Tonucci R J;Fatemi M .Fabrication of GaAs and InAs wires in nanochannel glass[J].Applied Physics Letters,1996,69(19):2846.
[49] Jiliang Yin;Xuefeng Qian;Jie Yin;Meiwu Shi;Jianchun Zhang;Guotai Zhou .Preparation of polystyrene/zirconia core-shell microspheres and zirconia hollow shells[J].Inorganic Chemistry Communications,2003(7):942-945.
[50] 庞利萍,赵瑞红,郭奋,陈建峰,崔文广.新型氧化铝空心球的制备及表征[J].物理化学学报,2008(06):1115-1119.
[51] 张海明,邹开顺,李淑红,崔艳,钟宏杰.CdS纳米粒子的LB膜自组装研究[J].功能材料,2004(z1):2704-2706.
[52] Hentze HP.;Raghavan SR.;McKelvey CA.;Kaler EW. .Silica hollow spheres by templating of catanionic vesicles[J].Langmuir: The ACS Journal of Surfaces and Colloids,2003(4):1069-1074.
[53] 张冬柏,齐利民,程虎民,马季铭.液晶模板法制备Au纳米线[J].高等学校化学学报,2003(12):2143-2146.
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