[1] Escuder B, Rodriguez-Llansola F, Miravet J F. Supramolecular gels as active media for organic reactions and catalysis[J]. New J. Chem., 2010, 34:1044-1054. [2] Das D, Kar T, Das P K. Gel-nanocomposites:Materials with promising applications[J]. Soft Matter, 2012, 8:2348-2365. [3] 陈彰旭, 郑炳云, 李先学, 等. 模板法制备纳米材料研究进展[J]. 化工进展, 2010, 29(1):94-99. [4] 张博, 姚伟峰, 宋秀兰, 等. 硫化物光催化剂的形貌控制及光催化性能的研究进展[J]. 化工进展, 2012, 31(1):83-89. [5] Ono Y, Nakashima K, Sano M, et al. Organic gels are useful as a template for the preparation of hollow fiber silica[J]. Chem. Commun., 1998(14):1477-1478. [6] Wang J, Liu S, Zhang C, et al. Synthesis and applications of chiral nano-silica[J]. Progress in Chemistry, 2011, 23(4):669-678. [7] Jung J H, Kobayash H, Masuda M, et al. Helical Ribbon aggregate composed of a crown-appended cholesterol derivative which acts as an amphiphilic gelator of organic solvents and as a template for chiral silica transcription[J]. J. Am. Chem. Soc., 2001, 123:8785-8789. [8] Jung J H, Kobayashi H, van Bommel K J C, et al. Creation of novel helical ribbon and double-layered nanotube TiO2 structures using an organogel template[J]. Chem. Mater., 2002, 14:1445-1447. [9] Yang Y G, Fukui H, Suzuki M, et al. Preparation of silica nanosprings using cationic gelators as template[J]. Bulletin of the Chemical Society of Japan, 2005, 78(11):2069-2074. [10] Ono Y, Nakashima K, Masahito Sano M, et al. Template effect of cholesterol-based organogels on sol-gel polymerization creates novel silica with a helical structure[J]. Chemistry Letters, 1999, 28(10):1119-1120. [11] Sugiyasu K, Tamaru S, Takeuchi M, et al. Double helical silica fibrils by sol-gel transcription of chiral aggregates of gemini surfactants[J]. Chem. Commun., 2002, 11:1212-1213. [12] Jung J H, Ono Y, Hanabusa K, et al. Creation of both right-handed and left-handed silica structures by sol-gel transcription of organogel fibers comprised of chiral diaminocyclohexane derivatives[J]. J. Am. Chem. Soc., 2000, 122(20):5008-5009. [13] Moreau Joël J E, Vellutini Luc, Man Michel Wong Chi, et al. New hybrid organic-inorganic solids with helical morphology via H-bond mediated sol-gel hydrolysis of silyl derivatives of chiral (R, R)- or (S, S)-diureidocyclohexane[J]. Am. Chem., 2001, 123(7):1509-1510. [14] Jung J H, Yoshida K, Shimizu T. Creation of novel double-helical silica nanotubes using binary gel system[J]. Langmuir, 2002, 18(23):8724-8727. [15] 苏丽红, 师同顺, 卢然. 以有机化合物为模板构筑零维或一维无机纳米材料[D]. 长春:吉林大学, 2007. [16] 苏丽红, 薛鹏冲, 张萍, 等. 基于紫精衍生物的有机凝胶为模板合成SiO2纳米管[J]. 吉林大学学报, 2005, 43(6):839-841. [17] Chang X L, Wang L, Yang Y J, et al. Bis-(4-stearoylaminophenyl) methane assembles in organic solvents and used as templates for preparation of SiO2 nanowires[J]. J. Mater. Chem. Phys., 2006, 99:61-65. [18] Yang Y G, Suzuki M, Kimura M, et al. Preparation of cotton-like silica[J]. Chem. Commun., 2004, 11:1332-1333. [19] Wan X B, Pei X F, Zhao H Y, et al. The formation of helical mesoporous silica nanotubes[J]. Nanotechnology, 2008, 19(31):315602. DOI:10.1088/0957-4484/19/31/315602. [20] Yang Y, Suzuki M, Owa S, et al. Control of mesoporous silica nanostructures and pore-architectures using a thickener and a gelator[J]. Journal of the American, 2007, 129:581-587. [21] 薛鹏冲.手性小分子有机凝胶剂的合成、组装、及其模板构筑无机纳米结构[D]. 长春:吉林大学, 2005 [22] Zheng J Y, Qiu K Y. Synthesis of mesoporous titania materials with non-surfactantorganic compounds as templates[J]. Chem. J. Chin. U, 2000, 21:647-649. [23] Kobayashi S, Hanabusa K, Hamasaki N, et al. Preparation of TiO2 hollow-fibers using supramolecular assemblies[J]. Chem. Mater., 2000, 12(6):1523-1525. [24] 鞠维刚, 张晓宏, 吴世康. 以凝聚子聚集体为模板制备TiO2纳米材料及其性质研究[J]. 高等化学学报, 2004, 25(12):2308-2311. [25] Suzuki M, Nakajima Y, Sato T, et al. Fabrication of TiO2 using L-lysine-based organogelators as organic templates:Control of the nanostructures[J]. Chem. Commun., 2006, 2:377-379. [26] Gundiah G, Mukhopadhyay S, Tumkurkar U G, et a1. Hydrogel route to nanotubes of metal oxides and sulfates[J]. J. Mater. Chem., 2003, 13:2118-2122. [27] Xue P C, Lu R, HuangY, et a1. Novel pearl-necklace porous CdS nanofiber templated by organogel[J]. Langmuir, 2004, 20(15):6470-6475. [28] 谭昌会, 赵英英, 卢然. 小分子凝胶剂的组装及其模板合成金属硫化物纳米纤维[D]. 长春:吉林大学, 2005. [29] 谭昌会.查尔酮衍生物水凝胶模板合成CdS纳米带[J]. 漳州师范学院学报:自然科学版, 2009, 22(4):53-57. [30] 谭昌会, 苏丽红, 卢然, 等.水凝胶体系中CuS纳米纤维的模板合成[J]. 吉林大学学报, 2006, 44(1):126-129 [31] 谭昌会.Ag2S 纳米棒的制备与表征[J]. 漳州师范学院学报, 2008(1):75-77. [32] Tan C H, Lu R, Xue P C. et al. Synthesis of CuS nanoribbons templated by hydrogel[J]. Materials Chemistry and Physics, 2008, 112(2):500-503. [33] Palui G, Nanda J, Ray S, et al. Fabrication of luminescent cds nanoparticles on short-peptide-based hydrogel nanofibers:Tuning of optoelectronic properties[J]. Chem. Eur. J., 2009, 15(28):6902-6909. [34] Kogiso M, Zhou Y, Shimizu T. Instant preparation of self-assembled metal-complexed lipid nanotubes that act as templates to produce metal-oxide nanotubes[J]. Advanced Materials, 2007, 19(2):242-246. [35] 王丽萍.凝胶体系中纳米Fe3O4可控合成及其用于制备生物柴油的研究[D]. 天津:天津大学, 2012. [36] 蔡龙成. 金属离子/胆酸钠超分子水凝胶特殊温度响应性研究及其凝胶模板法制备电极材料的应用[D]. 乌鲁木齐:新疆大学, 2013. [37] Jung J H, Ono Y, Shinkai S. Sol-gel polycondensation of tetraethoxysilane in a cholesterol-based organogel system results in chiral spiral silica[J]. Angetcandte Chemine Internationl Edition, 2000, 39(10):1862-1865 [38] Kimura M, Kobayashi S, Kuroda T, et al. Assembly of gold nanoparticles into fibrous aggregates using thiol-terminated gelators[J]. Adv. Mater., 2004, 16(4):335-338. [39] Bhat S, Maitra U. Nanoparticle-gel hybrid material designed with bile acid analogues[J]. Chem. Mater., 2006, 18(18):4224-4226. [40] Gao P, Zhan C L, Liu M H. Controlled synthesis of double- and multiwall silver nanotubes with template organogel from a bolaamphiphile[J]. Langmuir, 2006, 22:775-779. [41] Basit H, Pal A, Sen S, et al. Two-component hydrogels comprising fatty acids and amines:Structure, properties, and application as a template for the synthesis of metal nanoparticles[J]. Chem. Eur. J., 2008, 14(21):6534-6545. [42] Sangeetha N M, Bhat S, Raffy G, et al. HybridMaterials combining photoactive 2, 3-didecyloxyanthracene physical gels and gold nanoparticles[J]. Chem. Mater., 2009, 21(14):3424-3432. [43] Zhan C L, Wang J B, Yuan J, et a1. Synthesis of right-and left-handed silver nanohelices with a racemic gelator[J]. Langmuir, 2003, 19:9440-9445. [44] Sudipta R, Apurba K D, Arindam B. Smart oligopeptide gels:In situ formation and stabilization of gold and silver nano-particles within supramolecular organogel networks[J]. Chemical Communications, 2006, 26:2816-2818. [45] Mantion A, Guex A G, Foelske-Schmitz A, et a1. Silver nanoparticle engineering via oligovaline organogels[J]. Soft Matter, 2008, 4(3): 606-617. [46] Piepenbrock M O M, Clarke N, Steed J W. Rheology and silver nanoparticle templating in a bis(urea) silver metallogel[J]. Soft Matter, 2011, 7(6):2412-2418. [47] 张紫萍, 刘秀军, 李同起, 等. 新型石墨烯基纳米复合材料的研究进展[J]. 化工进展, 2011, 30(4):788-792. [48] Moniruzzaman M, Sahin A, Karen I. Improved mechanical strength and electrical conductivity of organogels containing carbon nanotubes[J]. Elsevier, 2009, 47(3):645-650. [49] Samanta S K, Pal A, Bhattacharya S, et al. Carbon naontube reinforced supramolecular gels with electrically conducting, viscoelastic and near-infrared sensitive properties[J]. J. Mater. Chem., 2010, 20(33):6881-6890. |