Free-energy model for nanoparticle self-assembly by liquid crystal sorting

被引:12
|
作者
Atzin, Noe [1 ]
Guzman, Orlando [1 ]
Gutierrez, Oscar [1 ]
Hirst, Linda S. [2 ]
Ghosh, Sayantani [2 ]
机构
[1] Univ Autonoma Metropolitana, Dept Fis, Av San Rafael Atlixco 186,Ciudad Mexico, Mexico City 09340, DF, Mexico
[2] Univ Calif Merced, Sch Nat Sci, Merced, CA 95343 USA
基金
美国国家科学基金会;
关键词
QUANTUM DOTS; GOLD NANOPARTICLES; FINE-STRUCTURE; SUPERLATTICES; NANOCRYSTALS; ORGANIZATION; LATTICES; DEFECTS; ARRAYS; CELLS;
D O I
10.1103/PhysRevE.97.062704
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
We modeled the experimentally observed self-assembly of nanoparticles (NPs) into shells with diameters up to 10 mu m, via segregation from growing nematic domains. Using field-based Monte Carlo simulations, we found the equilibrium configurations of the system by minimizing a free-energy functional that includes effects of excluded-volume interactions among NPs, orientational elasticity, and the isotropic-nematic phase-transition energy. We developed a Gaussian-profile approximation for the liquid crystal (LC) order-parameter field that provides accurate analytical values for the free energy of LC droplets and the associated microshells. This analytical model reveals a first-order transition between equilibrium states with and without microshells, governed mainly by the competition of excluded-volume and phase-transition energies. By contrast, the LC elasticity effects are much smaller and mostly confined to setting the size of the activation barrier for the transition. In conclusion, field-based thermodynamic methods provide a theoretical framework for the self-assembly of NP shells in liquid crystal hosts and suggest that field-based kinetic methods could be useful to simulate and model the time evolution of NP self-assembly coupled to phase separation.
引用
收藏
页数:7
相关论文
共 50 条
  • [41] SELF-ASSEMBLY OF MACROMOLECULES FROM LIQUID-CRYSTAL PRECURSORS
    CIFERRI, A
    KRIGBAUM, WR
    GAZZETTA CHIMICA ITALIANA, 1986, 116 (09): : 529 - 532
  • [42] Interplay of self-assembly and viscoelasticity in chiral liquid crystal gels
    Khan, Raj Kumar
    Majumdar, Sayantan
    Ramarao, Pratibha
    PHYSICS OF FLUIDS, 2022, 34 (04)
  • [43] Guanosine derivatives: Self-assembly and lyotropic liquid crystal formation
    Pieraccini, S
    Giorgi, T
    Gottarelli, G
    Masiero, S
    Spada, GP
    MOLECULAR CRYSTALS AND LIQUID CRYSTALS, 2003, 398 : 57 - 73
  • [44] Liquid-crystal-mediated self-assembly at nanodroplet interfaces
    J. A. Moreno-Razo
    E. J. Sambriski
    N. L. Abbott
    J. P. Hernández-Ortiz
    J. J. de Pablo
    Nature, 2012, 485 : 86 - 89
  • [45] Self-assembly of phase-segregated liquid crystal structures
    Kato, T
    SCIENCE, 2002, 295 (5564) : 2414 - 2418
  • [46] Ion transport electrolyte by self-assembly of liquid crystal materials
    MIAO Zong-cheng
    CHU Ya-qin
    ZHU Wen-qing
    CHINESE JOURNAL OF LIQUID CRYSTALS AND DISPLAYS, 2022, 37 (04) : 437 - 443
  • [47] Liquid-crystal-mediated self-assembly at nanodroplet interfaces
    Moreno-Razo, J. A.
    Sambriski, E. J.
    Abbott, N. L.
    Hernandez-Ortiz, J. P.
    de Pablo, J. J.
    NATURE, 2012, 485 (7396) : 86 - 89
  • [48] Evaporation-induced self-assembly of liquid crystal biopolymers
    Park, Soon Mo
    Yoon, Dong Ki
    MATERIALS HORIZONS, 2024, 11 (08) : 1843 - 1866
  • [49] Research progress on self-assembly of polyphilic liquid crystal molecules
    Wang, Ruoyu
    Cao, Yu
    Liu, Feng
    CHINESE JOURNAL OF LIQUID CRYSTALS AND DISPLAYS, 2025, 40 (01) : 128 - 152
  • [50] Self-Assembly of Unfunctionalized Nanoparticles in Crystallization of Liquid Crystal Trimers
    Itahara, Toshio
    Tamura, Hisashi
    Kubota, Kaoru
    Uto, Tomohide
    JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY, 2015, 15 (04) : 2680 - 2685