Exploring phase transitions and thermal dynamics in nanoconfined liquid crystals using liquid-phase TEM

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Kaczmarczyk, Olga, Cyprych, Konrad, Benkowska-Biernacka, Dominika, Kowalczyk, Rafał, Matczyszyn, Katarzyna, Wu, Hanglong, Ross, Frances M., Miniewicz, Andrzej, Żak, Andrzej
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866908737685422080
author Kaczmarczyk, Olga
Cyprych, Konrad
Benkowska-Biernacka, Dominika
Kowalczyk, Rafał
Matczyszyn, Katarzyna
Wu, Hanglong
Ross, Frances M.
Miniewicz, Andrzej
Żak, Andrzej
author_facet Kaczmarczyk, Olga
Cyprych, Konrad
Benkowska-Biernacka, Dominika
Kowalczyk, Rafał
Matczyszyn, Katarzyna
Wu, Hanglong
Ross, Frances M.
Miniewicz, Andrzej
Żak, Andrzej
contents Nanoconfined liquid crystals (LCs) and their nanocomposites are driving the next generation of photonic applications. Consequently, deepening our understanding of mesophase stability, defect topology, and the dynamic response of LCs at the nanoscale requires the development of novel characterization approaches. This motivates us to perform in situ observations on model 4'-octyl-4-cyanobiphenyl (8CB) LC using liquid-phase scanning transmission electron microscopy (LP-STEM). We find that the electron beam induced consecutive phase changes from smectic A to nematic (SmA-N) and from nematic to isotropic (N-I). The kinetic dependence of the phase transition on dose rate shows that the time between SmA-N and N-I shortens with increasing rate, revealing the hypothesis that a higher electron dose rate increases the energy dissipation rate, leading to substantial heat generation in the sample. We report on the spontaneous formation of disclinations, ordering effects, and complete process reversibility. Radiolytic effects of the electron beam are discussed in detail, and additional experiments with external heating indicate that the observed phenomena are mainly thermal in nature. The results are supported by calculations of heat diffusion, suggesting the nanoconfined 8CB differs significantly in thermal properties compared to the bulk one. This is the first detailed study of LC phase transitions using LP-STEM, which paves the way for further studies of nanoconfined LCs and for the development of the technique for advanced LC materials research.
format Preprint
id arxiv_https___arxiv_org_abs_2512_23588
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Exploring phase transitions and thermal dynamics in nanoconfined liquid crystals using liquid-phase TEM
Kaczmarczyk, Olga
Cyprych, Konrad
Benkowska-Biernacka, Dominika
Kowalczyk, Rafał
Matczyszyn, Katarzyna
Wu, Hanglong
Ross, Frances M.
Miniewicz, Andrzej
Żak, Andrzej
Soft Condensed Matter
Materials Science
Applied Physics
Nanoconfined liquid crystals (LCs) and their nanocomposites are driving the next generation of photonic applications. Consequently, deepening our understanding of mesophase stability, defect topology, and the dynamic response of LCs at the nanoscale requires the development of novel characterization approaches. This motivates us to perform in situ observations on model 4'-octyl-4-cyanobiphenyl (8CB) LC using liquid-phase scanning transmission electron microscopy (LP-STEM). We find that the electron beam induced consecutive phase changes from smectic A to nematic (SmA-N) and from nematic to isotropic (N-I). The kinetic dependence of the phase transition on dose rate shows that the time between SmA-N and N-I shortens with increasing rate, revealing the hypothesis that a higher electron dose rate increases the energy dissipation rate, leading to substantial heat generation in the sample. We report on the spontaneous formation of disclinations, ordering effects, and complete process reversibility. Radiolytic effects of the electron beam are discussed in detail, and additional experiments with external heating indicate that the observed phenomena are mainly thermal in nature. The results are supported by calculations of heat diffusion, suggesting the nanoconfined 8CB differs significantly in thermal properties compared to the bulk one. This is the first detailed study of LC phase transitions using LP-STEM, which paves the way for further studies of nanoconfined LCs and for the development of the technique for advanced LC materials research.
title Exploring phase transitions and thermal dynamics in nanoconfined liquid crystals using liquid-phase TEM
topic Soft Condensed Matter
Materials Science
Applied Physics
url https://arxiv.org/abs/2512.23588