期刊文献+

Molecular dynamics simulation of wetting behavior at CO_2/water/solid interfaces 被引量:5

Molecular dynamics simulation of wetting behavior at CO_2/water/solid interfaces
原文传递
导出
摘要 We used molecular dynamics simulation to demonstrate the microscopic wetting behavior of two solid model surfaces for the first time.Hydrophilic and hydrophobic features were modeled in a dense CO2 fluid environment under various densities.The water droplet loses contact with the surface under the influence of higher density CO2 fluids on the hydrophobic surface.For the hydrophilic surface,no separation between the water droplet and the surface was observed.However,the contact angle of the water droplet on the hydrophilic surface was found to increase with the fluid density.The effect of dense CO2 fluid on the surface wettability can be interpreted in terms of enhanced interactions from the surrounding CO2 molecules. We used molecular dynamics simulation to demonstrate the microscopic wetting behavior of two solid model surfaces for the first time. Hydrophilic and hydrophobic features were modeled in a dense CO2 fluid environment under various densities. The water droplet loses contact with the surface under the influence of higher density CO2 fluids on the hydrophobic surface. For the hydrophilic surface, no separation between the water droplet and the surface was observed. However, the contact angle of the water droplet on the hydrophilic surface was found to increase with the fluid density. The effect of dense CO2 fluid on the surface wettability can be interpreted in terms of enhanced interactions from the surrounding CO2 molecules.
出处 《Chinese Science Bulletin》 SCIE EI CAS 2010年第21期2252-2257,共6页
基金 supported by the National Natural Science Foundation of China(20776066,20976079) the Natural Science Foundation of Jiangsu Province(BK2009359)
关键词 分子动力学模拟 界面润湿 行为模式 二氧化碳流体 固体表面 二氧化碳分子 疏水表面 表面润湿性 wettability, solid surface, molecular simulation, hydrophilic, hydrophobic, supercritical CO2
  • 相关文献

参考文献23

  • 1International Technology Roadmap for Semiconductors. Semiconductor Industry Association, 2005.
  • 2DeSimone J M. Practical approaches to green solvents. Science, 2002, 297:799-803.
  • 3Jones C A, Yang D, Irene E A, et al. HF etchant solutions in supercritical carbon dioxide for "Dry" etch processing of microelectronic devices. Chem Mater, 2003, 15:2867-2869.
  • 4King J W, Williams L L. Utilization of critical fluids in processing semiconductors and their related materials. Curr Opin Solid Mater Sci, 2003, 7:413-424.
  • 5Jones C A, Zweber A, DeYoung J P, et al. Applications of "dry" processing in the microelectronics industry using carbon dioxide. Critical Rev Solid State Mater Sci, 2004, 29:97-109.
  • 6Qin Y, Yang X, Zhu Y. Molecular dynamics simulation of interaction between supercritical CO2 fluid and modified silica surfaces. J Pbys Chem C, 2008, 112:12815-12824.
  • 7Keagy J A, Zhang X, Busch E, et al. Cleaning of patterned porous low-k dielectrics with water, carbon dioxide and ambidextrous surfactants. J Supercrit Fluids, 2006, 39:277-285.
  • 8Zhang X, Pham J Q, Martinez H J, et al. Water-in-carbon dioxide microemulsion for removing postech residues from patterned porous low-k dialectrices. J Vacuum Sci Technol, 2003, B21:2590-2598.
  • 9Keagy J A, Li Y, Green P F, et al. CO2 promotes penetration and removal of aqueous hydrocarbon surfactant cleaning solutions and silylation in low-k dielectrics with 3 nm pores. J Supercrit Fluids, 2007, 42:398-409.
  • 10Dickson J L, Guprta G, Horozov T S, et al. Wetting phenomena at the CO2/Water/Glass interface. Langmuir, 2006, 22:2161-2170.

同被引文献42

  • 1Daniel,侯优优,周之毅.“换房癖”的换房经[J].缤纷,2012(6):94-101. 被引量:2
  • 2Steytler D C, Rumsey E, Thorpe M, et al. Phosphate surfactants for water-in-COz microemulsions [ J ]. Langmuir,2001,17 :7948.
  • 3Lu L Y, Berkowitz M L. Molecular dynamics simulation of a re- verse micelle self assembly in supercritical CO2 [ J ]. Journal of the American Ceramic Society,2004,126 : 10254 - 10255.
  • 4Senapati S, Berkowitz M L. Molecular dynamics simulation studies of polyether and perfluoropolyether suffactant based reverse mi- celles in supercritical carbon dioxide [ J ]. Journal of Physical Chemistry B ,2003,107 : 12906 - 12916.
  • 5Chaltanya V S V, Senapati S. Self-assembled reverse micelles in supercritical CO2 entrap protein in native state[ J ]. Journal of the American Ceramic Society, 2008,130 : 1866 - 1870.
  • 6King J W, Williams L L. Utilization of criticalfluids in processing semiconductors and their related materials [ J ]. Current Opinion in Solid State and Materials Science, 2003,7:413 - 424.
  • 7Plimpton S. Fast parallel algorithms for short-range molecular dy- namics [ J 1. Journal of Computational Physics, 1995,117 : 1 - 19.
  • 8Lundgren M, Allan N L, Cosgrove T, et al. Wetting of water and water/ethanol droplets on a non-polar surface: a molecular dy- namics study [ J ]. Langmuir,2002,18 (26) : 10462 - 10466.
  • 9Janecek J, Netz R R. Interfacial water at hydrophobic and hydro- philic surfaces : depletion versus adsorption [ J 1. Langmuir, 2007, 23(16) :8417 -8429.
  • 10Wongkoblap A,Do D D. Adsorption of water in finite length car- bon slit pore : comparison between computer simulation and exper- iment[ J ]. Journal of Physical Chemistry B, 2007,111 ( 50 ) : 13949 - 13956.

引证文献5

二级引证文献15

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部