Competition between capillarity, layering and biaxiality in a confined liquid crystal

被引:0
|
作者
S. Varga
Y. Martınez-Ratón
E. Velasco
机构
[1] Universidad Autónoma de Madrid,Departamento de Fısica Teórica de la Materia Condensada
[2] Universidad Carlos III de Madrid,Grupo Interdisciplinar de Sistemas Complejos (GISC), Departamento de Matemáticas, Escuela Politécnica Superior
[3] Universidad Autónoma de Madrid,Departamento de Fısica Teórica de la Materia Condensada and Instituto de Ciencia de Materiales Nicolás Cabrera
来源
关键词
Layering Transition; Nematic Phase; Pore Width; Hard Wall; Smectic Phase;
D O I
暂无
中图分类号
学科分类号
摘要
The effect of confinement on the phase behaviour and structure of fluids made of biaxial hard particles (cuboids) is examined theoretically by means of Onsager second-order virial theory in the limit where the long particle axes are frozen in a mutually parallel configuration. Confinement is induced by two parallel planar hard walls (slit-pore geometry), with particle long axes perpendicular to the walls (perfect homeotropic anchoring). In bulk, a continuous nematic-to-smectic transition takes place, while shape anisotropy in the (rectangular) particle cross-section induces biaxial ordering. As a consequence, four bulk phases, uniaxial and biaxial nematic and smectic phases, can be stabilised as the cross-sectional aspect ratio is varied. On confining the fluid, the nematic-to-smectic transition is suppressed, and either uniaxial or biaxial phases, separated by a continuous transition, can be present. Smectic ordering develops continuously from the walls for increasing particle concentration (in agreement with the supression of nematic-smectic second-order transition at confinement), but first-order layering transitions, involving structures with n and n + 1 layers, arise in the confined fluid at high concentration. Competition between layering and uniaxial-biaxial ordering leads to three different types of layering transitions, at which the two coexisting structures can be both uniaxial, one uniaxial and another biaxial, or both biaxial. Also, the interplay between molecular biaxiality and wall interactions is very subtle: while the hard wall disfavours the formation of the biaxial phase, biaxiality is against the layering transitions, as we have shown by comparing the confined phase behaviour of cylinders and cuboids. The predictive power of Onsager theory is checked and confirmed by performing some calculations based on fundamental-measure theory.
引用
收藏
页码:89 / 101
页数:12
相关论文
共 50 条
  • [41] FIELD-INDUCED BIAXIALITY IN SMA PHASE OF A LIQUID-CRYSTAL EXHIBITING ELECTROCLINIC EFFECT
    KIMURA, M
    AKAHANE, T
    KOBAYASHI, S
    JAPANESE JOURNAL OF APPLIED PHYSICS PART 1-REGULAR PAPERS SHORT NOTES & REVIEW PAPERS, 1993, 32 (08): : 3530 - 3533
  • [42] Competition between anchoring and reversible photo-induced alignment of a nematic liquid crystal
    Thieghi, LT
    Bonvent, JJ
    Oliveira, EA
    Giacometti, JA
    Balogh, DT
    APPLIED PHYSICS A-MATERIALS SCIENCE & PROCESSING, 2003, 77 (07): : 911 - 914
  • [43] Competition between anchoring and reversible photo-induced alignment of a nematic liquid crystal
    L.T. Thieghi
    J.J. Bonvent
    E.A. Oliveira
    J.A. Giacometti
    D.T. Balogh
    Applied Physics A, 2003, 77 : 911 - 914
  • [44] Liquid Crystal Orientation Mechanism: Competition Between Rubbing and Ion-beam Method
    Kim, Ji-Ho
    Han, Jeong-Min
    Shon, Jin-Geun
    JOURNAL OF ELECTRICAL ENGINEERING & TECHNOLOGY, 2013, 8 (06) : 1457 - 1461
  • [45] Confined liquid crystals-polymer dispersed liquid crystal films
    Manaila-Maximean, Doina
    UPB Scientific Bulletin, Series A: Applied Mathematics and Physics, 2021, 83 (01): : 271 - 278
  • [46] Resonance shear measurement on liquid crystal confined between solid surfaces under electric field
    Nakano, Shinya
    Mizukami, Masashi
    Kurihara, Kazue
    ACTA CRYSTALLOGRAPHICA A-FOUNDATION AND ADVANCES, 2008, 64 : C551 - C552
  • [47] Orientational phase transition and the solvation force in a nematic liquid crystal confined between inhomogeneous substrates
    S. Kondrat
    A. Poniewierski
    L. Harnau
    The European Physical Journal E, 2003, 10 : 163 - 170
  • [48] Orientational phase transition and the solvation force in a nematic liquid crystal confined between inhomogeneous substrates
    Kondrat, S
    Poniewierski, A
    Harnau, L
    EUROPEAN PHYSICAL JOURNAL E, 2003, 10 (02): : 163 - 170
  • [49] Modelling of the phase transition of nanoscale confined liquid crystal
    Jiang Xiaobao
    Wen Zi
    LIQUID CRYSTALS, 2013, 40 (08) : 1116 - 1120
  • [50] Ring Defects in a Strongly Confined Chiral Liquid Crystal
    Fukuda, Jun-ichi
    Zumer, Slobodan
    PHYSICAL REVIEW LETTERS, 2011, 106 (09)