CONDENSED MATTER: STRUCTURAL, MECHANICAL, AND THERMAL PROPERTIES |
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Electro-optic response in thin smectic C* film with chevron structures |
Aleksey A Kudreyko1, Nail G Migranov2, Dana N Migranova2 |
1. Ufa State Petroleum Technological University, Department of Physics, Kosmonavtov St. 1, 450062 Ufa, Russia;
2. Bashkir State Pedagogical University, Department of General and Theoretical Physics, Okt. Revolutsii St. 3A, 450000 Ufa, Russia |
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Abstract The effects in electrostatic models of chevron surface-stabilized ferroelectric liquid crystals are investigated through numerical modeling. To study smectic C* director distribution within the cell, we consider two nonlinear approaches:the chevron interface does not interplay with the electric field; the electric field interplays with the chevron interface. The obtained results of the director field distribution are compared with the earlier linearized studies. We find that whether or not the electric field interplays with the chevron interface, the electro-optic response requires a generalized approach for its description. The threshold electric field, which is necessary for switching between two stable director states in the chevron cell is evaluated. This study suggests that, in many cases of practical interest, electro-optic response to the electric field and the threshold electric field can be precisely estimated. We argue that, beside being numerically efficient, our approach provides a convenient and a novel standpoint for looking at the electro-optic response problem.
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Received: 16 May 2016
Revised: 08 July 2016
Accepted manuscript online:
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PACS:
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61.20.Gy
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(Theory and models of liquid structure)
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61.20.Ja
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(Computer simulation of liquid structure)
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61.30.Dk
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(Continuum models and theories of liquid crystal structure)
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61.30.Gd
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(Orientational order of liquid crystals; electric and magnetic field effects on order)
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Fund: Project supported by the Russian Foundation for Basic Research (RFBR) (Grant Nos. 16-32-00043 and 14-02-97026). |
Corresponding Authors:
Aleksey A Kudreyko
E-mail: akudreyko@rusoil.net
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Cite this article:
Aleksey A Kudreyko, Nail G Migranov, Dana N Migranova Electro-optic response in thin smectic C* film with chevron structures 2016 Chin. Phys. B 25 126101
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[1] |
Meyer R B, Liebert L, Strzelecki L and Keller P 1975 J. Phys. Lett. 36 L69
|
[2] |
Clark N A and Rieker T P 1988 Phys. Rev. A 37 1053
|
[3] |
Nakagawa M 1989 Mol. Cryst. Liq. Cryst. 174 65
|
[4] |
Nakagawa M 1990 Displays 11 67
|
[5] |
Nakagawa M 1990 J. Phys. Soc. Jpn. 59 1995
|
[6] |
Meyere A, Herman P and Ley E 1993 Liquid Crystals 14 1269
|
[7] |
Limat L 1995 J. Phys. II 5 803
|
[8] |
Vaupotič N, Kralj S, Čopič M and Sluckin T J 1996 Phys. Rev. E 54 3783
|
[9] |
Beldon S M, Mottram N J and Elston S J 1993 Mol. Cryst. Liq. Cryst. Sci. Technol., Sect. A 365 729
|
[10] |
Shalaginov A N, Hazelwood L D and Sluckin T J 1998 Phys. Rev. E 58 7455
|
[11] |
Shalaginov A N, Hazelwood L D and Sluckin T J 1999 Phys. Rev. E 60 4199
|
[12] |
MacLennan J E, Handschy M A and Clark N A 1990 Liquid Crystals 7 787
|
[13] |
Sabater J, Pena J M S and Otón J M 1995 J. Appl. Phys. 77 3023
|
[14] |
Dierking I, Mitov M and Osipov M 2015 Soft Matter 11 819
|
[15] |
Pasechnik S V, Chigrinov V G, Shmeliova D V 2009 Liquid Crystals:Viscous and Elastic Properties (Weinheim:Wiley-VCH) p. 336
|
[16] |
Mottram N J, Islam N Ul and Elston S J 1999 Phys. Rev. E 60 613
|
[17] |
Romanov V P, Ulyanov S V and Chernyak K G 2010 Phys. Solid State 52 1849
|
[18] |
Romanov V P, Ulyanov S V and Chernyak K G 2010 Phys. Solid State 52 2207
|
[19] |
Demus D, Goodby J, Gray G W, Spiess H-W and Vill V 1998 Handbook of Liquid Crystals, Vol. 2B (Weinheim:Wiley-VCH), p. 581
|
[20] |
Kiselev A D, Chigrinov V G and Pozhidaev E P 2007 Phys. Rev. E 75 061706
|
[21] |
Vaupotič N and Čopič M 2003 Phys. Rev. E 68 061705
|
[22] |
Stewart I W 2004 The Static and Dynamic Continuum Theory of Liquid Crystals:A Mathematical Introduction (London:Taylor & Francis), pp. 307-312
|
[23] |
Lam L and Prost J 1992 Solitons in Liquid Crystals (Springer Science+Business Media, LLC), pp. 180-182
|
[24] |
Lagerwall S T 1999 Ferroelectric and Antiferroelectric Liquid Crystals (Weinheim:Wiley-VCH), p. 211
|
[25] |
de Gennes P G and Prost J 1993 The Physics of Liquid Crystals, 2nd edn. (Oxford:Oxford University Press) pp. 479-485
|
[26] |
Ribotta R and Durand 1977 Journal de Physique 38 179
|
[27] |
Vaupotič N, Grubelnik V and Čopič M 2000 Phys. Rev. E 62 2317
|
[28] |
Shin H H, Park J J and Kim W S 6549 258[2003-04-15]
|
[29] |
Migranov N G and Kudreyko A A 2015 Chin. Phys. B 24 076101
|
[30] |
Oh-e M, Isogai M and Kitamura T 1992 Liquid Crystals 11 101
|
[31] |
Geer R E, Shashidhar, R, Thibodeaux A F and Duran R S 1993 Phys. Rev. Lett. 71 1391
|
[32] |
Zhang C, Lavrentovich O D and Jákli A 2016 Proc. SPIE 9769 97690D
|
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