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Updated: Aug 4, 2025

Self-assembling Morphologies Obtained from Helical Polycarbodiimide Copolymers and Their Triazole Derivatives
Published on: February 7, 2017
Helical Organic and Inorganic Polymers.
So Hirata1, Yasuteru Shigeta2, Sotiris S Xantheas3,4
1Department of Chemistry, University of Illinois at Urbana-Champaign, Urbana, Illinois 61801, United States.
This study introduces a new computational method for studying helical polymers, enabling accurate predictions of their properties and exploring novel materials like nitrogen and oxygen chains for potential high-energy-density applications.
Area of Science:
- Computational Chemistry
- Materials Science
- Polymer Physics
Background:
- Helical polymers are crucial in plastics and biomolecules but are understudied using advanced quantum chemical methods.
- Existing methods struggle with the complexity and incommensurable structures of infinite helical polymers.
Purpose of the Study:
- To develop and validate an *ab initio* computational framework for accurately characterizing infinite helical polymers.
- To enable the prediction of electronic, structural, and vibrational properties of these complex systems.
- To explore novel, potentially metastable helical polymers of nitrogen and oxygen.
Main Methods:
- Development of an *ab initio* second-order many-body Green's function [MBGF(2)] method tailored for helical polymers using symmetry-adapted Gaussian basis functions.
- Integration with density-functional theory (DFT) for energies, forces, and structural optimizations.
- Application to polyethylene, polyacetylene, and polytetrafluoroethylene to validate accuracy against experimental spectra and properties.
Main Results:
- The MBGF(2) method accurately predicts quasiparticle energy bands and vibrational frequencies, converging smoothly with oligomer results.
- The framework successfully characterizes both commensurable and incommensurable helical polymer structures.
- Validated accuracy of MBGF(2)/cc-pVDZ for photoelectron spectra and DFT for structures and vibrational spectra of model polymers.
- Predicted properties for novel nitrogen and oxygen helical polymers, including polyazene, polyazane, polyfluoroazane, and polyoxane.
Conclusions:
- The developed *ab initio* method provides a robust tool for studying infinite helical polymers.
- The study establishes the quantitative accuracy of the MBGF(2) approach for simulating polymer properties.
- Identified novel nitrogen and oxygen-based helical polymers as potential high-energy-density materials, warranting further investigation.
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