參考文獻 |
Brask, A., “Principles of electroosmotic pumps,” Technical University of Denmark Master Thesis, February 26, (2003).
Chen, L., Ma, J., Tan, F. and Guan, Y., “Generating high-pressure sub-microliter flow rate in packed microchannel by electroosmotic force: potential application in microfluidic systems,” Sensors and Actuators B 88 (2003) 260-265.
Chen, L. Ma, J. and Guan, Y., “Study of an electroosmotic pump for liquid delivery and its application in capillary column liquid chromatography,” J. Chromatography A 1028 (2004) 219-226.
Chen, C. H. and Santiago, J. G., “Electrokinetic flow instability in high concentration gradient microflows,” Proc. Int’l Mech. Eng. Cong. and Exp., New Orleans, LA, CD (2002) 33563.
Chen, C. H. and Santiago, J. G.. “A planar electroosmotic micropump,” J. Microelectromechanical Systems, 11 (6) (2002) 672-683.
Chen, L., Wang, H., Ma, J., Wang, C. and Guan, Y., “Fabrication and characterization of a multi-stage electroosmotic pump for liquid delivery,” Sensors and Actuators B 104 (2005) 117-123.
Chen, G., Tallarek, U., Seidel-Morgenstern, A. and Zhang, Y., “Influence of moderate Joule heating on electroosmotic flow velocity, retention and efficiency in capillary electrochromatography,” J. Chromatography A 1044 (2004) 287-294.
Jiang, L., Mikkelsen, J., Koo, J.-M., Huber, D., Yao, S., Zhang, L., Zhou, P., Maveety, J. G., Prasher, R., Kenny, T. W. and Goodson, K. E., “Closed-loop electroosmotic microchannel cooling system for VLSI circuits,” IEEE Transactions on components and packaging technologies, 25 (3) (2002) 347-355.
Laser, D. J. and Santiago, J. G., “A review of micropumps,” J. Micromech. Microeng. 14 (2004) R35-R64.
Mutlu, S., Yu, C., Selvaganapathy, P., Svec, F., Mastrangelo, C. H. and Frechet, J. M. J., “Micromachined porous polymer for bubble free electro-osmotic pimp,” IEEE MEMS 2002 Conference, 19-24.
Miller, S. A. and Martin, C. R., “Controlling the rate and direction of electroosmotic flow in template-prepared carbon nanotube membranes,” J. Electroanalytical Chemistry 522 (2002) 66-69.
Muthu, S., Svec F., Mastrangelo, C. H., Frechet, J. M. J. and Gianchandani, Y. B., “Enhanced electro-osmotic pumping with liquid bridge and field effect flow rectification, Micro Electro Mechanical Systems,” 17th IEEE MEMS Conference, (2004) 850-853.
Reichmuth, D. S., Chirica, G. S. and Kirby, B. J., “Increasing the performance of high-pressure, high-efficiency electrokinetic micropumps using zwitterionic solute additives,” Sensors and Actuators B 92 (2003) 37-43.
Singhal , V., Garimella, S. V. and Raman, A., “Microscale pumping technologies for microchannel cooling systems,” Applied Mechanics Reviews, 57 (3) (2004) 191-221.
Tripp, J. A., Svec, F., Frechet, J. M.J., Zeng, S., Mikkelsen, J. C. and Santiago, J. G., “High-pressure electroosmotic pumps based on porous polymer monoliths,” Sensors and Actuators B 92 (2004) 66-73.
Viklund, C. and Ponten, E., “Molded macroporous poly (glycidyl methacrylate- co-trimethylolpropane trimethacrylate) materials with fine controlled porous properties: preparation of monoliths using photoinitiated polymerization,” Chem. Mater. 9 (1997) 463.
Yao, S., Huber, D., Mikkelsen, J. C. and Santiago, J. G.., “A large flowrate electroosmotic pump with micron pores,” ASME International Mechanical Engineering Congress and Exposition, 11-16 (2001) 1-7.
Yao, S. and Santiago, J. G., “Porous glass electroosmotic pump: theory,” J. Colloid and Interface Science, 268 (2003) 133-142.
Yao, S., Hertzog, D. E., Zeng, S., Mikkelsen, J. C. and Santiago, J. G., “Porous glass electroosmotic pumps: design and experiments,” J. Colloid and Interface Science, 268 (2003) 143-153.
Zeng, S., Chen, C. H., Mikkelsen, J. C. and Santiago, J. G., “Fabrication and characterization of electroosmotic micropumps,” Sensors and Actuators B 79 (2001) 107-114.
Zeng, S., Chen, C. H., Santiago, J. G., Chen, J. R., Zare, R. N., Tripp, J. A., Svec, F. and Frechet, J. M.J., “Electroosmotic flow pumps with polymer frits,” Sensors and Actuators B 82 (2002) 209-212.
黃經孝,微管道電滲流物理特性之數值模擬,國立中央大學碩士論文,中壢市,2004。
王介光,溫度不敏感性之電動力學行為於毛細管區域電泳,國立中央大學化工工程研究所碩士論文,中壢市,2004。 |