(3)吸附剂
介孔碳具有规则排列的孔道结构, 较大的比表面积,较稳定的化学性能,大孔容等特点,所以在介孔碳分子筛的孔道内可以通过一些方法引入不同结构和功能的基团, 从而比较容易得到各种性质的吸附剂。因此, 介孔碳作为吸附材料具有很多优势, 是一种良好的生物大分子的吸附和分离的载体。
参考文献
[1] Simon P, Gogotsi Y. Capacitive energy storage in nanostructured carbon–electrolyte systems. Acc Chem Res 2012.
[2] Wang GP, Zhang L, Zhang JJ. A review of electrode materials for electrochemical supercapacitors. Chem Soc Rev 2012;41(2):797–828.
[3] Inagaki M, Konno H, Tanaike O. Carbon materials for electrochemical capacitors. J Power Sources 2010;195(24):7880–903.
[4] Zhai Y, Dou Y, Zhao D, Fulvio PF, Mayes RT, Dai S. Carbon
materials for chemical capacitive energy storage. Adv Mater
[5]Chunlei Wang, Li Sun, Ying Zhou, Peng Wan, Xu Zhang, Jieshan Qiu ELSEVIER .CARBON 59(2013)537-546
[6]刘蕾,袁忠勇. 介孔碳材料的制备和表征. 南开大学研究生院. 2008年5月
[7]K Nakanishi, N Soga, Z Non—Cryst. Solids. 1992,139,l
[8]Pekala R W , Kong F M . Resorcinol-formaldehyde aerogels and their carbonized derivative. Polymer Preprints.1989,30(1):221-223.
[9]梁长海.碳气凝胶及其研究进展.材料科学与工程.1998,16:13-18.
[10]Horikawa T, Hayashi J, Muroyama K. Controllability of pore characteristics of resorcinol-formaldehyde carbon aerogels [J]. Carbon, 2004, 42(8/9): 1625-1633.
[11]Pekala R W, Alviso C T, Kong F M, et al. Aerogel derived from multifunction organic monomers [J]. J Non-cryst Solids, 1992, 145(1/2/3): 90-98.
[12]Matsuoka T, Hatori H, Kodama M, et al. Capillary condensation of water in the mesopores of nitrogen- enriched carbon aerogel [J]. Carbon, 2004, 42(11): 2346-2349.
[13]Pekala R W. Low density resorcinol—fommldehyde aerogels. US, 5476878 [P]. 1995-12-19.
[14]张睿, 梁晓怡, 詹亮, 等. 酚醛糠醛基炭气凝胶的合成与表征[J]. 新型炭材料, 2002, 17(4): 23-28. Zhang Rui, Liang Xiaoyi, Zhan Liang, et al. Synthesis and characterization of phenolic-furfural based carbon aerogels [J]. New Carbon Materials. 2002, 17(4): 23-28. (in Chinese)
[15] Li W, Reichenaue G,Frieke J. Carbon aerogels derived from cresol-resorcinol-formaldehyde for supercapacitors [J]. Carbon, 2002, 40(15): 2955-2959
[16] Zhang S, Fu R, Wu D, et al. Preparation and characterization of antibacterial silver-dispersed activated carbon aerogels [J]. Carbon, 2004, 42(15): 3209-3216.
[17] Wu D, Fu R, Zhang S, et al. Preparation of low-density carbon aerogels by ambient pressure drying [J]. Carbon, 2004, 42(10): 2033-2039.
[18] Zhang R, Li W, Liang X, et al. Effect of hydrophobic group in polymer matrix on porosity of organic and carbon aerogels from sol-gel polymerization of phenolic resol and methyloaded melamine. [J]. Micropor Mesopor Mater, 2003, 62(1/2): 17-27.
[19] Zhang R, Lu Y, Zhan L, et al. Momolithic carbon aerogels from sol-gel polymerization of phenolic resoles and methylloaded melamine [J]. Carbon, 2003, 41(8): 1660-1663.
[20] Zhang R, Li W, Li K, et al. Effect of concentration of reactants on porosity of hydrogels, organic carbon aerogels [J]. Micropor Mesopor Mater, 2004, 72(l/2/3): 167-173.
[21] Yamamoto T, Sugimoto T, Suzuki T, et al. Preparation and characterization of carbon areogel microspheres [J]. Carbon, 2002, 40(8): 1345-1351.
[22] Horikawa T, Hayashi J, Muroyama K. Size control and charaeterization of spherieal carbon aerogel particles from resorcinol-formaldehyde resin [J]. Carbon, 2004, 42(1): 169-175.
[23]王媛媛 模板法合成介孔碳材料. 《河北科技大学》2013年TQ127.11;TB383.4
[24] Ryoo R, Joo S H, Jun S. Synthesis of highly ordered carbon molecular sieves via template-mediated structural transformation [J]. J Phys Chem B, 1999, 103(42): 7743-7738. 介孔碳的合成文献综述和参考文献(4):http://www.751com.cn/wenxian/lunwen_29889.html