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出典: フリー百科事典『ウィキペディア(Wikipedia)』

: Electrowetting

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187519361981G. Beni  S. Hackwood [1]1980 J. Brown 調19841988 (EWOD) ITO  NSF Grants 8760730 & 8822197[2]  J. Silver EWOD  PCR [3]

 Bruno Berge 1993 ElectroWetting-On-Dielectric (EWOD)  EWOD [4][5]: :[6]- EWOD 

[7]2 (Digital Microfluidic Circuits) (Digital Microfluidics)EWOD  Cho, Moon, Kim[8] 4

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 Klarman et al.[11] 

Chevaloitt [12]

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[13]

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[] (electrowetting on liquid-infused film, EWOLF) -EWOLF  EWOD 調[14]

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[15][16][17]--調

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調ITO[18] FluoroPel V Cytonix  CYTOP  AGC Teflon AF [19][20]

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調[21][22]CytonixCytonix

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2018618620

関連項目[編集]

References[編集]

  1. ^ Beni, G.; Hackwood, S. (1981-02-15). “Electro‐wetting displays”. Applied Physics Letters (AIP Publishing) 38 (4): 207–209. doi:10.1063/1.92322. ISSN 0003-6951. 
  2. ^ [1][リンク切れ]
  3. ^ Archived copy”. 2011年7月8日時点のオリジナルよりアーカイブ。2009年11月14日閲覧。
  4. ^ S. Arscott “Electrowetting and semiconductors” RSC Advances 4, 29223 (2014). doi:10.1039/C4RA04187A.
  5. ^ C. Palma and R. Deegan “Electrowetting on semiconductors” Appl. Phys. Lett. 106, 014106 (2015). doi:10.1063/1.4905348.
  6. ^ S. Arscott and M. Gaudet "Electrowetting at a liquid metal-semiconductor junction" Appl. Phys. Lett. 103, 074104 (2013). doi:10.1063/1.4818715.
  7. ^ Pollack, Michael G.; Fair, Richard B.; Shenderov, Alexander D. (2000-09-11). “Electrowetting-based actuation of liquid droplets for microfluidic applications”. Applied Physics Letters (AIP Publishing) 77 (11): 1725–1726. doi:10.1063/1.1308534. ISSN 0003-6951. 
  8. ^ Cho, S. K.; Moon, H.; Kim, C.-J. (2003). “Creating, transporting, cutting, and merging liquid droplets by electrowetting-based actuation for digital microfluidic circuits”. Journal of Microelectromechanical Systems (Institute of Electrical and Electronics Engineers (IEEE)) 12 (1): 70–80. doi:10.1109/jmems.2002.807467. ISSN 1057-7157. 
  9. ^ Chang, H. C.; Yeo, L. (2009). Electrokinetically Driven Microfluidics and Nanofluidics. Cambridge University Press 
  10. ^ Kirby, B. J. (2010). Micro- and Nanoscale Fluid Mechanics: Transport in Microfluidic Devices.. Cambridge University Press. ISBN 978-0-521-11903-0. http://www.kirbyresearch.com/textbook 
  11. ^ Klarman, Dan; Andelman, David; Urbakh, Michael (2011-05-17). “A Model of Electrowetting, Reversed Electrowetting, and Contact Angle Saturation”. Langmuir (American Chemical Society (ACS)) 27 (10): 6031–6041. arXiv:1102.0791. doi:10.1021/la2004326. ISSN 0743-7463. 
  12. ^ Chevalliot, Stéphanie; Kuiper, Stein; Heikenfeld, Jason (2012). “Experimental Validation of the Invariance of Electrowetting Contact Angle Saturation”. Journal of Adhesion Science and Technology (Brill) ahead-of-print (ahead-of-print): 1–22. doi:10.1163/156856111x599580. ISSN 0169-4243. http://www.ece.uc.edu/devices/Downloads/Documents/Publications/Experimental%20Validation%20of%20the%20Invariance%20of%20Electrowetting_New.pdf. 
  13. ^ Krupenkin, Tom; Taylor, J. Ashley (2011-08-23). “Reverse electrowetting as a new approach to high-power energy harvesting”. Nature Communications (Springer Science and Business Media LLC) 2 (1): 448. doi:10.1038/ncomms1454. ISSN 2041-1723. 
  14. ^ Hao, Chonglei; Liu, Yahua; Chen, Xuemei; He, Yuncheng; Li, Qiusheng; Li, K. Y.; Wang, Zuankai (2014-10-30). “Electrowetting on liquid-infused film (EWOLF): Complete reversibility and controlled droplet oscillation suppression for fast optical imaging”. Scientific Reports (Springer Science and Business Media LLC) 4 (1): 6846. doi:10.1038/srep06846. ISSN 2045-2322. 
  15. ^ Chiou, Pei Yu; Moon, Hyejin; Toshiyoshi, Hiroshi; Kim, Chang-Jin; Wu, Ming C. (2003). “Light actuation of liquid by optoelectrowetting”. Sensors and Actuators A: Physical (Elsevier BV) 104 (3): 222–228. doi:10.1016/s0924-4247(03)00024-4. ISSN 0924-4247. 
  16. ^ Park, Sung-Yong; Teitell, Michael A.; Chiou, Eric P. Y. (2010). “Single-sided continuous optoelectrowetting (SCOEW) for droplet manipulation with light patterns”. Lab on a Chip (Royal Society of Chemistry (RSC)) 10 (13): 1655. doi:10.1039/c001324b. ISSN 1473-0197. 
  17. ^ Arscott, Steve (2011). “Moving liquids with light: Photoelectrowetting on semiconductors”. Scientific Reports (Springer Science and Business Media LLC) 1 (1): 184. doi:10.1038/srep00184. ISSN 2045-2322. 
  18. ^ Yang, Chun-Guang; Xu, Zhang-Run; Wang, Jian-Hua (February 2010). “Manipulation of droplets in microfluidic systems”. TrAC Trends in Analytical Chemistry 29 (2): 141–157. doi:10.1016/j.trac.2009.11.002. 
  19. ^ Brabcova, Zuzana; McHale, Glen; Wells, Gary G.; Brown, Carl V.; Newton, Michael I. (20 March 2017). “Electric field induced reversible spreading of droplets into films on lubricant impregnated surfaces”. Applied Physics Letters 110 (12): 121603. Bibcode2017ApPhL.110l1603B. doi:10.1063/1.4978859. 
  20. ^ Lu, Yi; Sur, Aritra; Pascente, Carmen; Ravi Annapragada, S.; Ruchhoeft, Paul; Liu, Dong (March 2017). “Dynamics of droplet motion induced by Electrowetting”. International Journal of Heat and Mass Transfer 106: 920–931. doi:10.1016/j.ijheatmasstransfer.2016.10.040. 
  21. ^ H.Burak Eral, D.Mampallil, M. H. G. Duits, F. Mugele "Suppressing the coffee stain effect: how to control colloidal self-assembly in evaporating drops using electrowetting", Soft Matter, 2011, 7, 4954–4958, doi:10.1039/C1SM05183K
  22. ^ H. Burak Eral, R. Ruiter, J. Ruiter, J. M. Oh, C. Semprebon, M. Brinkmann, F. Mugele, "Reversible morphological transitions of a drop on a fiber", Soft Matter, 2011, 7 (11), 5138 – 5143, doi:10.1039/C0SM01403F

外部リンク[編集]