Cascade Formation of Topological Defects and Satellite Droplets in Liquid Crystals at Dynamic Capillary Instability
- 作者: Dolganov P.V.1, Spiridenko N.A.2, Dolganov V.K.2, Kats E.I.3, Baklanova K.D.2,4
-
隶属关系:
- Institute of Solid State Physics, Russian Academy of Sciences
- Osipyan Institute of Solid State Physics, Russian Academy of Sciences
- Landau Institute for Theoretical Physics, Russian Academy of Sciences
- HSE University
- 期: 卷 118, 编号 1-2 (7) (2023)
- 页面: 118-124
- 栏目: Articles
- URL: https://kld-journal.fedlab.ru/0370-274X/article/view/663119
- DOI: https://doi.org/10.31857/S1234567823140094
- EDN: https://elibrary.ru/GZLPGY
- ID: 663119
如何引用文章
详细
The formation of topological defects at the nematic–isotropic liquid interface and near satellite droplets has been detected at the breakup and fragmentation of the bridge of the isotropic phase between nematic domains. This process has been implemented in thin optical cells filled with a liquid crystal. The critical width of the bridge at which a universal time dependence of its width is determined by the capillary velocity (ratio of the surface tension to the viscosity) has been determined.
作者简介
P. Dolganov
Institute of Solid State Physics, Russian Academy of Sciences
Email: masalov@issp.ac.ru
俄罗斯联邦, ul. Akademika Osip’yana 2, Chernogolovka, Moscow oblast, 142432
N. Spiridenko
Osipyan Institute of Solid State Physics, Russian Academy of Sciences
Email: pauldol@issp.ac.ru
Chernogolovka, Moscow region, 142432 Russia
V. Dolganov
Osipyan Institute of Solid State Physics, Russian Academy of Sciences
Email: pauldol@issp.ac.ru
Chernogolovka, Moscow region, 142432 Russia
E. Kats
Landau Institute for Theoretical Physics, Russian Academy of Sciences
Email: pauldol@issp.ac.ru
Chernogolovka, Moscow region, 142432 Russia
K. Baklanova
Osipyan Institute of Solid State Physics, Russian Academy of Sciences;HSE University
编辑信件的主要联系方式.
Email: pauldol@issp.ac.ru
Chernogolovka, Moscow region, 142432 Russia;Moscow, 101000 Russia
参考
- J. Eggers, Rev. Mod. Phys. 69, 865 (1997).
- J. Eggers and E. Villermaux, Rep. Prog. Phys. 71, 036601 (2008).
- W. S. Rayleigh, Proc. London Math. Soc. 4, 10 (1878).
- N. Bohr, Phil. Trans. Roy. Soc. Lond. 209, 281 (1909).
- J. Plateau, Statique Exp'erimentale et Th'eoretique des Liquides Soumisaux Seules Forces Mol'ecoulaires, Gautethier-Villars, Paris (1873).
- Y. Lee and J. E. Sprittles, J. Fluid Mech. 797, 29 (2016).
- H. A. Stone, B. J. Bentley, and L. G. Lead, J. Fluid Mech. 173, 131 (1986).
- B. M. Tjahjadi, H. A. Stone, and J. M. Ottino, J. Fluid Mech. 243, 297 (1992).
- X. Zhang, R. S. Padgett, and O. A. Basaran, J. Fluid Mech. 329, 207 (1996).
- J. C. Burton, J. E.Rutledge, and P. Taborek, Phys. Rev. Lett. 92, 244505 (2004).
- J. C. Burton and P. Taborek, Phys. Rev. Lett. 98, 224502 (2007).
- E. Alvarez-Lacalle, J. Casademunt, and J. Eggers, Phys. Rev. E 80, 056306 (2009).
- A. A. Castrejon-Pita, J. R. Castrejon-Pita, and I. M. Hutchings, Phys. Rev. Lett. 108, 074506 (2012).
- D. Tiwari, L. Mercury, M. Dijkstra, H. Chaudhary, and J. F. Hern'andez-S'anchez, Phys. Rev. Fluids 3, 124202 (2018).
- H. Wee, B. W. Wagoner, P. M. Kamat, and O. A. Basaran, Phys. Rev. Lett. 124, 204501 (2020).
- P. Bazazi, H. A. Stone, and S. H. Hejazi, Phys. Rev. Lett. 130, 034001 (2023).
- J. R. Lister and H. A. Stone, Phys. Fluids 10, 2758 (1998).
- A. B. Bazilevskii and A. N. Rozhkov, Fluid Dynamics 50, 800 (2015).
- A. Deblais, M. A. Herrada, I. Hauner, K. P. Velikov, T. van Roon, H. Kellay, J. Eggers, and D. Bonn, Phys. Rev. Lett. 121, 254501 (2018).
- N. B. Speirs, K. R. Langley, P. Taborek, and S. T. Thoroddsen, Phys. Rev. Fluids 5, 044001 (2020).
- П. Ж. де Жен, Физика жидких кристаллов, пер.с англ., Мир, М. (1978), 400 с.
- М. Клеман, О. Д. Лаврентович, Основы физики частично упорядоченных сред, пер. с англ., ФИЗМАТЛИТ, М. (2007), 680 с.
- P. Oswald and P. Pieranski, Nematic and Cholesteric Liquid Crystals: Concepts and Physical Properties Illustrated by Experiments, Taylor and Francis, Boca Raton (2005).
- I. Cohen, M. P. Brenner, J. Eggers, and S. R. Nagel, Phys. Rev. Lett. 83, 1147 (1999).
- J. Eggers and Z. Angew, Math. Mech. 85(6), 400 (2005).
- P. V. Dolganov, A. S. Zverev, K. D. Baklanova, and V. K. Dolganov, Phys. Rev. E 104, 014702 (2021).
- T. C. Lubensky and J. Prost, J. Phys. II France 2, 371 (1992).
- Y.-K. Kim, S. V. Shiyanovskii, and O. D. Lavrentovich, J. Phys. Condens. Matter 25, 404202 (2013).
- P. V. Dolganov and N. A. Spiridenko, Liq. Cryst. 49, 1933 (2022).
- S. Faetti, Mol. Cryst. Liq. Cryst. 179, 217 (1990).
- Y.-J. Chen and P. H. Steen, J. Fluid Mech. 341, 245 (1997).
- D. T. Papageorgiou, J. Fluid Mech. 301, 109 (1995).
- D. T. Papageorgiou, Phys. Fluids 7, 1529 (1995).
- T. A. Kowalewski, Fluid Dyn. Res. 17, 121 (1996).
- G. H. McKinley and A. Tripathi, J. Rheol. 44, 653 (2000).
- J. Eggers, Phys. Rev. Lett. 71, 3458 (1993).
- P. Oswald and G. Poy, Phys. Rev. E 92, 062512 (2015).
- H. Wang, T. X. Wu, S. Ganza, J. R. Wu, and S.-T. Wu, Liq. Cryst. 33, 91 (2006).
- R. Basu, D. Kinnamon, N. Skaggs, and J. Womack, J. Appl. Phys. 119, 185107 (2016).
- П. В. Долганов, В. К. Долганов, Е. И. Кац, Письма в ЖЭТФ 115, 236 (2022).
- К. Д. Бакланова, В. К. Долганов, Е. И. Кац, П. В. Долганов, Письма в ЖЭТФ 117, 537 (2023).
- A. V. Subbotin and A. N. Semenov, Macromolecules 55, 2096 (2022).
补充文件
