Stable Assemblies of Topological Defects in Nematic Orientational Order

被引:0
|
作者
Holbl, Arbresha [1 ]
Mesarec, Luka [2 ]
Polansek, Jus [1 ]
Iglix, Ales [2 ]
Kralj, Samo [1 ,3 ]
机构
[1] Univ Maribor, Fac Nat Sci & Math, Maribor 2000, Slovenia
[2] Univ Ljubljana, Fac Elect Engn, Ljubljana 1000, Slovenia
[3] Jozef Stefan Inst, Ljubljana 1000, Slovenia
来源
ACS OMEGA | 2023年 / 8卷 / 01期
关键词
PHASE-TRANSITION; LIQUID-CRYSTALS; DYNAMICS; POINT; SURFACE;
D O I
10.1021/acsomega.2c07174
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
We considered general mechanisms enabling the stabilization of localized assemblies of topological defects (TDs). There is growing evidence that physical fields represent fundamental natural entities, and therefore these features are of interest to all branches of physics. In general, cores of TDs are energetically costly, and consequently, assemblies of TDs are unfavorable. Owing to the richness of universalities in the physics of TDs, it is of interest to identify systems where they are easily experimentally accessible, enabling detailed and well-controlled analysis of their universal behavior, and cross-fertilizing knowledge in different areas of physics. In this respect, thermotropic nematic liquid crystals (NLCs) represent an ideal experiment testbed for such studies. In addition, TDs in NLCs could be exploited in several applications. We present examples that emphasize the importance of curvature imposed on the phase component of the relevant order parameter field. In NLCs, it is represented by the nematic tensor order parameter. Using a simple Landau-type approach, we show how the coupling between chirality and saddle splay elasticity, which can be expressed as a Gaussian curvature contribution, can stabilize Meron TDs. The latter have numerous analogs in other branches of physics. TDs in 2D curved manifolds reveal that the Gaussian curvature dominantly impacts the assembling and stabilization of TDs. Furthermore, a strong enough curvature that serves as an attractor for TDs is a respective field that could be imposed in a fast enough phase transition. Assemblies of created TDs created in such a disordered environment could be stabilized by appropriate impurities.
引用
收藏
页码:169 / 179
页数:11
相关论文
共 50 条
  • [1] Nematic order condensation and topological defects in inertial active nematics
    Saghatchi, Roozbeh
    Yildiz, Mehmet
    Doostmohammadi, Amin
    PHYSICAL REVIEW E, 2022, 106 (01)
  • [2] Orientational order and formation of topological defects in two-dimensional systems
    Vasilieva, E. V.
    Vaulina, O. S.
    JOURNAL OF EXPERIMENTAL AND THEORETICAL PHYSICS, 2013, 117 (01) : 169 - 176
  • [3] Orientational order and formation of topological defects in two-dimensional systems
    E. V. Vasilieva
    O. S. Vaulina
    Journal of Experimental and Theoretical Physics, 2013, 117 : 169 - 176
  • [4] Orientational order and topological defects in two-dimensional Yukawa systems
    Vaulina, O. S.
    Vasilieva, E. V.
    PHYSICS LETTERS A, 2014, 378 (09) : 719 - 722
  • [5] ORIENTATIONAL ORDER IN STRAINED NEMATIC NETWORKS
    BLADON, P
    WARNER, M
    TERENTJEV, EM
    MACROMOLECULES, 1994, 27 (24) : 7067 - 7075
  • [6] ORIENTATIONAL ORDER IN ANISALDAZINE IN NEMATIC PHASE
    MADHUSUDANA, NV
    SHASHIDHAR, R
    CHANDRASEKHAR, S
    MOLECULAR CRYSTALS AND LIQUID CRYSTALS, 1971, 13 (01) : 61 - +
  • [7] Transition of frustrated nematic order and fluctuation of topological defects in microwrinkle grooves
    Ohzono, Takuya
    Fukuda, Jun-ichi
    SOFT MATTER, 2012, 8 (45) : 11552 - 11556
  • [8] TOPOLOGICAL DEFECTS, ORIENTATIONAL ORDER, AND DEPINNING OF THE ELECTRON-SOLID IN A RANDOM POTENTIAL
    CHA, MC
    FERTIG, HA
    PHYSICAL REVIEW B, 1994, 50 (19): : 14368 - 14380
  • [9] TOPOLOGICAL DEFECTS, ORIENTATIONAL ORDER, AND DEPINNING OF THE ELECTRON-SOLID IN A RANDOM POTENTIAL
    FERTIG, HA
    CHA, MC
    PHYSICA B, 1995, 212 (03): : 267 - 272
  • [10] Orientational Correlations in Active and Passive Nematic Defects
    Pearce, D. J. G.
    Nambisan, J.
    Ellis, P. W.
    Fernandez-Nieves, A.
    Giomi, L.
    PHYSICAL REVIEW LETTERS, 2021, 127 (09)