中文
Announcement
More
Progress in Chemistry 2009, Vol. 21 Issue (04): 606-614 Previous Articles   Next Articles

• Review •

Supercritical Fluids Deposition Techniques for the Formation of Nanocomposites

Yin Jianzhong1**; Zhang Xianzhen1; Xu Qinqin1; Zhang Chuanjie1; Wang Aiqin2   

  1. (1. School of Chemical Engineering, Dalian University of Technology, Dalian 116012, China; 2. Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian 116023, China)
  • Received: Revised: Online: Published:
  • Contact: Yin Jianzhong E-mail:jzyin@dlut.edu.cn
PDF ( 2486 ) Cited
Export

EndNote

Ris

BibTeX

This review summarizes the progress in the preparation of nanocomposites by supercritical fluid deposition method. Possessing attracting characteristics such as zero surface tension, tunable properties with pressure and temperature, and high solvent efficiency, supercritical fluids are used to prepare high-quality nanoparticals, thin films, and nanoporous materials. The adsorption, thermodynamics and kinetics during the supercritical fluid deposition are also discussed in this review. The deposition mechanisms proposed by different authors are summarized. It is indicated that the supercritical fluid deposition is an effective method for preparing nanocomposites. Finally, some key issues to be resolved are pointed out and the prospects for future research are proposed.

Contents
1 Preface
2 Experimental researches of preparing nanocomposites using SCFD method
2.1 Metallic nanoparticles deposition into the pores of the substrates
2.2 Metallic nanoparticles deposition on the outer surface of the substrates
2.3 Metallic film or particles deposition on the surface of the substrates
2.4 Preparing porous nanophase materials using NC-SCF method
3 The adsorption, thermodynamics and dynamics for SCFD processs
4 Investigation of the deposition mechanism in SCFD
5 Conclusions

CLC Number: 

[ 1 ]  徐琴琴(Xu Q Q) , 银建中(Yin J Z) , 肖敏(Xiao M) 等. 化学通报(Chemistry) , 2007 , 3 : 188 —194
[ 2 ]  Saquing C D , Cheng T T, Erkey C , et al . J . Phys. Chem. B ,2004 , 108 : 7716 —7722
[ 3 ]  Zhang Y, Erkey C. Ind. Eng. Chem. Res. , 2005 , 44 : 5312 —5317
[ 4 ]  Yen C H , Shimizu K, Wai CM, et al . Energy &Fuels , 2007 , 21 :2268 —2271
[ 5 ]  Zhao B , Momose T, Ohkubo T, et al . Microelectronic Engineering ,2008 , 85 : 675 —681
[ 6 ]  Morley K S , Licence P , Marr P C , et al . J . Mater. Chem. , 2004 ,14 : 1212 —1217
[ 7 ]  Ye X R , Lin Y H , Wai CM, et al . J . Mater. Chem. , 2004 , 14 :908 —913
[ 8 ]  Sun Z Y, Zhang X R , Liu ZM, et al . Carbon , 2007 , 45 : 2589 —2596
[ 9 ]  Wakayama H , Fukushima Y. Ind. Eng. Chem. Res. , 2006 , 45 :3328 —3331
[10 ]  Zhang Y, Kang D , Erkey C , et al . Ind. Eng. Chem. Res. , 2005 ,44 : 4161 —4164
[11 ]  Saquing C D , Kang D , Erkey C , et al . Microporous and Mesoporous Materials , 2005 , 80 : 11 —23
[12 ]  Bayrakceken A , Smirnova A , Erkey C , et al . Journal of Power Sources , 2008 , 179 : 532 —540
[13 ]  Xu Q , He J L , Chang YN , et al . Materials Science and Engineering B , 2005 , 123 : 41 —44
[14 ]  徐琴琴( Xu Q Q) . 大连理工大学硕士学位论文(Masterdissertation of Dalian University of Technology) , 2007
[15 ]  Morley KS , Marr P C , Webb P B , et al . J . Mater. Chem. , 2002 ,1898 —1905
[16 ]  Sun Z Y, Liu Z M, Han B X, et al . Journal of Colloid and Interface Science , 2006 , 304 : 323 —328
[17 ]  An GM, Liu Z M, Han B X, et al . Carbon , 2007 , 45 : 1795 —1801
[18 ]  Sun Z Y, Liu Z M, Han B X, et al . Materials Letters , 2007 , 61 :4565 —4568
[19 ]  Ye X R , Lin Y H , Wai C M. Chem. Commun. , 2003 , 642 —643
[20 ]  Bayrakceken A , Kitkamthorn U , Erkey C , et al . Scripta Materialia ,2007 , 56 : 101 —103
[21 ]  O’Neil A , Watkins J J . Chem. Mater. , 2006 , 18 : 5652 —5658
[22 ]  Zong Y F , Watkins J J . Chem. Mater. 2005 , 17 : 560 —565
[23 ]  Watkins J J , Blackburn J M, McCarthy TJ . Chem. Mater. , 1999 ,11 : 213 —215
[24 ]  Hunde E T, Watkins J J . Chem. Mater. , 2004 , 16 : 498 —503
[25 ]  Cabanas A , Shan X Y, Watkins J J . Chem. Mater. , 2003 , 15 :2910 —2916
[26 ]  Cabanas A , Blackburn J M, Watkins J J . Microelectronic Engineering , 2002 , 64 : 53 —61
[27 ]  Blackburn J M, Long D P , Watkins J J . Chem. Mater. , 2000 , 12 :2625 —2631
[28 ]  Cabanas A , Long D P , Watkins J J . Chem. Mater. , 2004 , 16 :2028 —2033
[29 ]  Long D P , Blackburn J M, Watkins J J . Adv. Mater. , 2000 , 12 :913 —915
[30 ]  Fernandes N E , Fisher S M, Watkins J J , et al . Chem. Mater. ,2001 , 13 : 2023 —2031
[31 ]  Shan X Y, Schmidt D P , Watkins J J . J . Supercritical Fluids ,2007 , 40 : 84 —92
[32 ]  Jiang R C , Zhang Y, Erkey C , et al . Electrochemical and Solid State Letters A , 2005 , 8 : 611 —615
[33 ]  Wakayama H , Fukushima Y. Chem. Commun. , 1999 , 391 —392
[34 ]  Wakayama H , Itahara H , Tatsuda N , et al . Chem. Mater. , 2001 ,13 : 2392 —2396
[35 ]  Fukushima Y, Wakayama H. J . Phys. Chem. B , 1999 , 103 :3062 —3064
[36 ]  Xu Q , Ding K L , He L M, et al . Materials Science and Engineering B , 2005 , 121 : 266 —271
[37 ]  Xu Q , Fan H J , Guo Y Q , et al . Materials Science and Engineering A , 2006 , 435P436 : 158 —162
[38 ]  Fan H J , Xu Q , Guo Y Q , et al . Materials Science and Engineering A , 2006 , 422 : 272 —277
[39 ]  Xu Q , Li J B , Peng Q , et al . Materials Science and Engineering B ,2006 , 127 : 212 —217
[40 ]  范海娟(Fan HJ ) , 许群(Xu Q) , 曹艳霞(Cao Y X) 等. 应用化学(Chinese Journal of Applied Chemistry) , 2007 , 24 (1) : 17 —20
[41 ]  Zhang Y, Kang D F , Erkey C , et al . J . Phys. Chem. B , 2005 ,109 : 2617 —2624
[42 ]  Zhang Y, Erkey C. J . Supercritical Fluids , 2006 , 38 : 252 —267
[43 ]  Zhang Y, Cangul B , Garrabos Y, Erkey C. J . Supercritical Fluids ,2008 , 44 : 71 —77

[1] Zonghan Xue, Nan Ma, Weigang Wang. Nitrated Mono-Aromatic Hydrocarbons in the Atmosphere [J]. Progress in Chemistry, 2022, 34(9): 2094-2107.
[2] Hui Zhao, Wenbo Hu, Quli Fan. Two-Photon Fluorescence Probe in Bio-Sensor [J]. Progress in Chemistry, 2022, 34(4): 815-823.
[3] Chuxuan Yan, Qinglin Li, Zhengqi Gong, Yingzhi Chen, Luning Wang. Organic Semiconductor Nanostructured Photocatalysts [J]. Progress in Chemistry, 2021, 33(11): 1917-1934.
[4] Yena Feng, Shuhe Liu, Shubo Zhang, Tong Xue, Honglin Zhuang, Anchao Feng. Preparation of SiO2/Polymer Nanocomposites Based on Polymerization-Induced Self-Assembly [J]. Progress in Chemistry, 2021, 33(11): 1953-1963.
[5] Jiaen Xie, Yuheng Luo, Qianling Zhang, Pingyu Zhang. Metal Complexes in Application of Two-Photon Luminescence Probes [J]. Progress in Chemistry, 2021, 33(1): 111-123.
[6] Yifan Xue, Wenhui Meng, Runze Wang, Junjie Ren, Weili Heng, Jianjun Zhang. Supersaturation Theory and Supersaturating Drug Delivery System(SDDS) [J]. Progress in Chemistry, 2020, 32(6): 698-712.
[7] Wanqiu Huang, Miaomiao Gao, Hongjing Dou. Polypyrrole and Its Nanocomposites Applied in Photothermal Therapy [J]. Progress in Chemistry, 2020, 32(4): 371-380.
[8] Wei-Pin Huang, Ke-Feng Ren, Jian Ji. New Strategies for Regulating Polymer’s Surface Microstructure [J]. Progress in Chemistry, 2020, 32(10): 1494-1503.
[9] Xiaoyin Li, Chuancong Zhou, Yinghua Wang, Feifei Ding, Huawei Zhou, Xianxi Zhang. Sn-Based Light-Absorbing Materials for Perovskite Solar Cells [J]. Progress in Chemistry, 2019, 31(6): 882-893.
[10] Xinda Yang, Qin Jiang, Pengfei Shi*. Two-Photon Absorptive Multinuclear Complexes [J]. Progress in Chemistry, 2018, 30(8): 1172-1185.
[11] Lu Jia, Jianzhong Ma, Dangge Gao, Bin Lv. Layered Double Hydroxides/Polymer Nanocomposites [J]. Progress in Chemistry, 2018, 30(2/3): 295-303.
[12] Bin Chi, Sanying Hou, Guangzhi Liu, Shijun Liao*. High Performance and High Power Density Membrane Electrode Assembly for Proton Exchange Membrane Fuel Cells [J]. Progress in Chemistry, 2018, 30(2/3): 243-251.
[13] Jie Guan, Lingna Sun, Qin Xu*, Xiaoya Hu*. Synthesis and Application of Molecularly Imprinted Polymers Based on Titanium Dioxide and Its Composites [J]. Progress in Chemistry, 2018, 30(11): 1749-1760.
[14] Chibao Huang*, Shaoying Chen. Two-Photon Fluorescence Probe [J]. Progress in Chemistry, 2017, 29(10): 1215-1227.
[15] Jing Ru, Biyao Geng, Congcong Tong, Haiying Wang, Shengchun Wu, Hongzhi Liu. Nanocellulose-Based Adsorption Materials [J]. Progress in Chemistry, 2017, 29(10): 1228-1251.