Atomistic analysis of nematic phase transition in 4-cyano-4′-<i>n</i>-alkyl biphenyl liquid crystals: Sampling for the first-order phase transition and the free-energy decomposition

S Shunsuke Ogita (Division of Chemical Engineering, Department of Materials Engineering Science, Graduate School of Engineering Science, Osaka University 1 , Toyonaka, Osaka 560-8531,) Y Yoshiki Ishii (Department of Data Science, School of Frontier Engineering, Kitasato University, 1-15-1 Kitazato, Minami-ku, Sagamihara, Kanagawa 252-0373, Japan) G Go Watanabe (Department of Data Science, School of Frontier Engineering, Kitasato University, 1-15-1 Kitazato, Minami-ku, Sagamihara, Kanagawa 252-0373, Japan) H Hitoshi Washizu (Graduate School of Information Science, University of Hyogo 3 , Kobe, Hyogo 650-0047,) K Kang Kim (Division of Chemical Engineering, Department of Materials Engineering Science, Graduate School of Engineering Science, The University of Osaka , Toyonaka, Osaka 560-8531,) N Nobuyuki Matubayasi (Division of Chemical Engineering, Department of Materials Engineering Science, Graduate School of Engineering Science, The University of Osaka , Toyonaka, Osaka 560-8531,)

Abstract

Molecular dynamics simulations were conducted using the generalized replica exchange method (gREM) on the 4-cyano-4′-n-alkyl biphenyl (nCB) system with n = 5, 6, 7, and 8, which exhibits a nematic–isotropic (NI) phase transition. Sampling near the phase transition temperature in systems undergoing first-order phase transitions, such as the NI phase transition, is demanding due to the substantial energy gap between the two phases. To address this, gREM, specifically designed for first-order phase transitions, was utilized to enhance sampling near the NI phase transition temperature. Free-energy calculations based on the energy representation (ER) theory were employed to characterize the NI phase transition. ER evaluates the insertion free energy of the nCB molecule for both nematic and isotropic phases, revealing a change in the temperature dependence across the NI phase transition. Further decomposition into energetic and entropic terms quantitatively shows the balance between these contributions at the NI phase transition temperature.

Article Details

Volume / Issue Vol. 162, Issue 5
Published February 07, 2025
ISSN 0021-9606
Publisher American Institute of Physics

Journal Info

The Journal of Chemical Physics

American Institute of Physics

ISSN: 0021-9606 Physical Sciences

Authors (6)

S

Shunsuke Ogita

Division of Chemical Engineering, Department of Materials Engineering Science, Graduate School of Engineering Science, Osaka University 1 , Toyonaka, Osaka 560-8531,

Y

Yoshiki Ishii

Department of Data Science, School of Frontier Engineering, Kitasato University, 1-15-1 Kitazato, Minami-ku, Sagamihara, Kanagawa 252-0373, Japan

G

Go Watanabe

Department of Data Science, School of Frontier Engineering, Kitasato University, 1-15-1 Kitazato, Minami-ku, Sagamihara, Kanagawa 252-0373, Japan

H

Hitoshi Washizu

Graduate School of Information Science, University of Hyogo 3 , Kobe, Hyogo 650-0047,

K

Kang Kim

Division of Chemical Engineering, Department of Materials Engineering Science, Graduate School of Engineering Science, The University of Osaka , Toyonaka, Osaka 560-8531,

N

Nobuyuki Matubayasi

Division of Chemical Engineering, Department of Materials Engineering Science, Graduate School of Engineering Science, The University of Osaka , Toyonaka, Osaka 560-8531,