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3 results for “Ring opening polymerization”
Thermochemical Data for Furan-based Monomer Candidates for Frontal Ring-Opening Metathesis Polymerization (FROMP)
<p>This dataset includes 471 furan-based monomer candidates for frontal ring-opening metathesis polymerization (FROMP) and relevant thermochemistry as calculated with density functional theory (DFT). The monomer candidates were combinatorically enumerated using Diels-Alder reactions of furan derivatives as dienes and four types of dienophiles (alkenes, alkynes, allenes, and benzynes). Common substituents were enumerated for the dienophile classes, and methyl substitution on the diene was explored. We used the SMILES arbitrary target specification (SMARTS) language to produce monomers and ring-opened structures from diene and dienophile precursor SMILES, and we studied the ring-opening reaction using a homodesmotic equation with ethene. RDKit conformers were initially generated from SMILES, then optimized with GFN2-xTB. The two conformers lowest in energy were then optimized with DFT using the wb97x-D3 functional, def2-TZVP basis set, and def2/J auxiliary basis set. Gibbs free energy corrections were obtained through frequency calculations. Structures with imaginary frequencies below -50 cm^{-1} were excluded from this work, and smaller imaginary modes were flipped to be positive for free energy calculations. Modes below 50 cm^{-1} were treated with the modified rigid rotor approximation, and all thermochemical values were calculated at T=200C. The CSV file contains the monomer SMILES, the free energy of reaction for Diels-Alder addition (G_DA_200), and the enthalpy of the ring-opening reaction (H_RO_200). All energies are given in kcal/mol. An interactive HTML is also included to visualize the monomers in this dataset.</p>
An Orthogonal Dynamic Covalent Chemistry Tool for Ring-Opening Polymerization of Cyclic Oligochalcogenides on Detachable Helical Peptide Templates
<p>Original data</p>
Semifluorinated Polymer Membranes by Ring-Opening Metathesis Polymerization during Spin Coating
<p>Date: 18 November, 2024</p> <p> </p> <p>Dataset Title: Semifluorinated Polymer Membranes by Ring-Opening Metathesis Polymerization during Spin Coating</p> <p> </p> <p> </p> <p>Dataset Creators: Arun Srikanth Sridhar</p> <p> </p> <p>Dataset Contact:</p> <p>Arun Srikanth Sridhar: askforarun@gmail.com</p> <p>Prof. Clare McCabe: C.MCCABE@hw.ac.uk</p> <p> </p> <p> </p> <p>Funding: Division of Materials Research (Award #2119575) , Graduate Research Fellowship Program, HWU high performance computing facility (DMOG)</p> <p> </p> <p> </p> <p>Key Points:</p> <p>- Molecular simulations and experiments agree that fluorocarbon side chains align parallel to the surface in the bulk but normal to the surface at the interface. </p> <p>- Molecular simulations show preferential segregations of CF<sub>3</sub> groups over CF<sub>2</sub> and CH<sub>2</sub> groups.</p> <p>- Fractional free volume increases upon flourination</p> <p> </p> <p> </p> <p>Research Overview:</p> <p> </p> <p>Molecular dynamics (MD) simulations were utilised to validate the theoretical and semi-empirical approaches employed and provide molecular level insight to the experientially observed behavior.</p> <p> </p> <p> </p> <p>Methodology:</p> <p>All simulations were conducted in NPT, NVT ensembles using GROMACS 2023.2. MDanalysis, mdtraj, and gromacs utility functions were used for postprocessing atomic trajectories.</p> <p> </p> <p>Files contained here:</p> <p> </p> <p>The PNBFN_SI folder contains two subfolders, PNBFN_signac and thickfilm_signac, a python file, analysis.py and a Jupyter notebook file, final_results.ipynb.</p> <p> </p> <p>Inside the PNBFN_signac folder you will find workspace folder. Each folder inside workspace folder corresponds to a specific polymer system. The information regarding the system is contained in signac_statepoint.json file. </p> <p> </p> <p>Inside any folder within the workspace folder of PNBFN_signac you will find</p> <p>1) all the necessary GROMACS files to reproduce the simulations of bulk polymer systems.</p> <p>2) The bash scripts used to run the simulations (for example 21stepbulk.sh is the script used to create bulk polymer systems ) in the cluster.</p> <p>3) The free volume folders, freevol_300_0_2.8, freevol_300_500000_2.8, freevol_300_100000_2.8 contain the necessary files to reproduce the calculations carried out using pore blazer. Here, 300 refers to the temperature, the second item (0,500000,100000) refers to the time stamp (in ps), the third item 2.8 refers to the probe diameter.</p> <p>4) log files.</p> <p> </p> <p>Inside the thickfilm_signac folder you will find workspace folder. Each folder inside workspace folder corresponds to a specific polymer film system.</p> <p> </p> <p>Inside any folder within the workspace of thickfilm_signac folder you will find</p> <p>1) all the necessary GROMACS files to reproduce the simulations of polymer film systems.</p> <p>2) The bash scripts used to run the simulations (for example 21stepfilm.sh is the script used to create polymer film systems) in the cluster.</p> <p>3) log files</p> <p> </p> <p>analysis.py in PNBFN_signac contains the python codes for running the simulations (generating the bashscripts) and the codes used in post processing.</p> <p> </p> <p>The final_results.ipynb calls the functions in analysis.py and contains the codes for generating the figures in the manuscript. Each code block in final_results.ipynb corresponds to a figure in the manuscript. The code blocks are commented for clarity.</p> <p>Use and Access:</p> <p>To use the signac framework of this project, MOSDEF suite (https://mosdef.org), SIGNAC (<a href="https://signac.io/">https://signac.io</a>) and other python packages need to be installed. These python packages can be found in analysis.py and final_results.ipynb.</p> <p>The trajectories require large disk space and are not provided but the simulations can be easily extended/reproduced using the following commands. Execute these commands within any folder inside workspace to extend the simulations by 1000 ps.</p> <p>gmx convert-tpr -s X.tpr -extend 1000 -o next.tpr</p> <p>gmx mdrun -s next.tpr -cpi X.cpt -noappend </p> <p>where X.tpr is the tpr file (topology file) and X.cpt is the check point file</p> <p> </p> <p>The full signac framework will be made available upon request.</p>
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