Jun Xu
Fudan University
7 Papers
54 Citations
Jun Xu is an academic researcher from Fudan University. The author has contributed to research in topics: Liquid crystal & Silver nanoparticle. The author has an hindex of 5, co-authored 7 publications.
Chat about Author
Papers
Liquid Crystal System as Molecular Machinery: Investigation of Dynamic Impedance Matching between Molecular Core and Terminal Groups Using Rotor-Bearing Model
TL;DR: In this paper, the phase stability of liquid crystal terphenyls and their fluorinated derivatives has been investigated using a micromachine system consisting of an ensemble of molecular rotors.
16
Topography of Thin Film Formed by Drying Silver Nanoparticle Dispersion Droplets
Yanchuan Li,Chun Fu,Jun Xu +2 more
TL;DR: In this article, the topography of thin thin films formed by drying silver nanoparticle dispersion droplets was studied and the drying temperature and volume of droplets showed significant effects on the topographies of the silver films.
15
Mechanical Model of Rotation Frame for Phase Stability and Molecular Conformation in Liquid Crystal System
TL;DR: In this paper, a model that explains the phase behaviors and thermal properties of a liquid crystal (LC) system is developed, based on the architecture of a frame consisting of atomic nuclei, and it is shown that the thermal stability of the LC molecules is dominated by the rotational dynamics of the nuclei frame.
7
Mechanical Rotor Model for Fluorinated Terphenyl Liquid Crystals
TL;DR: In this article, a micro-machine system consisting of an ensemble of molecular rotors was established to explain phase behaviors and thermal properties of liquid crystals (LCs), and the phenomena of the thermal stability of phase and polymorphism are interpreted in terms of mechanics that involve basic parameters such as center of gravity (G), moment of inertia (IA), eccentricity (e), and mass deviation along the molecular axis (δ).
7
Numerical Evaluation of the Relative Value of Dielectric Anisotropy and Order Parameter in Fluorinated Nematic Liquid Crystals
TL;DR: In this article, a numerical evaluation of physical constants in the fluorinated liquid crystals has been investigated, such as dipole moment and polarizability, using a semi-empirical molecular orbital method.
5