Single-Step Synthesis of Shape-Controlled Polymeric Particles using Initiated Chemical Vapor Deposition in Liquid Crystals

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Jain, Apoorva, Pal, Soumyamouli, Abbott, Nicholas L., Yang, Rong
Format: Preprint
Published: 2023
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866908569718226944
author Jain, Apoorva
Pal, Soumyamouli
Abbott, Nicholas L.
Yang, Rong
author_facet Jain, Apoorva
Pal, Soumyamouli
Abbott, Nicholas L.
Yang, Rong
contents The ability to synthesize shape-controlled polymer particles will benefit a wide range of applications including targeted drug delivery and metamaterials with reconfigurable structures, but existing synthesis approaches are commonly multistep and limited to a narrow size/shape range. Using a novel single-step synthesis technique, a variety of shapes including nanospheres, hemispherical micro-domes, orientation-controlled microgels, microspheres, spheroids, and micro-discs were obtained. The shape-controlled particles were synthesized by polymerizing divinylbenzene (DVB) via initiated chemical vapor deposition (iCVD) in nematic liquid crystals (LC). iCVD continuously and precisely delivered vapor-phase reactants, thus avoiding disruption of the LC structure, a critical limitation in past LC-templated polymerization. That shape controllability was further enabled by leveraging LC as a real-time display of the polymerization conditions and progression, using a custom in-situ long-focal range microscope. Detailed image analysis unraveled key mechanisms in polymer synthesis in LC. Poor solubilization by nematic LC led to the formation of pDVB nanospheres, distinct from microspheres obtained in isotropic solvents. The nanospheres precipitated to the LC-solid interface and further aggregated into microgel clusters with controlled orientation that was guided by the LC molecular alignment. On further polymerization, microgel clusters phase separated to form microspheres, spheroids, and unique disc-shaped particles.
format Preprint
id arxiv_https___arxiv_org_abs_2303_05662
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Single-Step Synthesis of Shape-Controlled Polymeric Particles using Initiated Chemical Vapor Deposition in Liquid Crystals
Jain, Apoorva
Pal, Soumyamouli
Abbott, Nicholas L.
Yang, Rong
Soft Condensed Matter
The ability to synthesize shape-controlled polymer particles will benefit a wide range of applications including targeted drug delivery and metamaterials with reconfigurable structures, but existing synthesis approaches are commonly multistep and limited to a narrow size/shape range. Using a novel single-step synthesis technique, a variety of shapes including nanospheres, hemispherical micro-domes, orientation-controlled microgels, microspheres, spheroids, and micro-discs were obtained. The shape-controlled particles were synthesized by polymerizing divinylbenzene (DVB) via initiated chemical vapor deposition (iCVD) in nematic liquid crystals (LC). iCVD continuously and precisely delivered vapor-phase reactants, thus avoiding disruption of the LC structure, a critical limitation in past LC-templated polymerization. That shape controllability was further enabled by leveraging LC as a real-time display of the polymerization conditions and progression, using a custom in-situ long-focal range microscope. Detailed image analysis unraveled key mechanisms in polymer synthesis in LC. Poor solubilization by nematic LC led to the formation of pDVB nanospheres, distinct from microspheres obtained in isotropic solvents. The nanospheres precipitated to the LC-solid interface and further aggregated into microgel clusters with controlled orientation that was guided by the LC molecular alignment. On further polymerization, microgel clusters phase separated to form microspheres, spheroids, and unique disc-shaped particles.
title Single-Step Synthesis of Shape-Controlled Polymeric Particles using Initiated Chemical Vapor Deposition in Liquid Crystals
topic Soft Condensed Matter
url https://arxiv.org/abs/2303.05662