scholarly journals Comparative Studies on Crystallinity, Thermal and Mechanical Properties of Polyketone Grown on Plasma Treated CVD Graphene

Polymers ◽  
2021 ◽  
Vol 13 (6) ◽  
pp. 919
Author(s):  
Sunghun Cho ◽  
Jun Seop Lee ◽  
Hyeji Jang ◽  
Seorin Park ◽  
Ji Hyun An ◽  
...  

In this work, we report a facile way to control crystalline structures of polyketone (PK) films by combining plasma surface treatment with chemical vapor deposition (CVD) technique. The crystalline structure of PKs grown on plasma-treated graphene and the resulting thermal and mechanical properties were systematically discussed. Every graphene sheet used in this work was produced by CVD method and the production of PKs having different crystallinity were performed on the O2- and N2-doped graphene sheets. It was evident that the CVD-grown graphene sheets acted as the nucleating agents for promoting the crystallization of β-form PK, while suppressing the growth of α-form PK crystals. Regardless of the increase in surface roughness of graphene, surface functionality of the CVD-grown graphene was found to be an important factor in determining the crystalline structure of PK. N2 plasma treatment of the CVD-grown graphene promoted growth of the β-form PK, whereas the O2 plasma treatment of CVD graphene led to transformation of the unoriented β-form PK into the oriented α-form PK. Thus, the resulting thermal and mechanical properties of the PKs were highly dependent on the surface functionality of the CVD graphene. The method of controlling crystalline structure of the PKs suggested in this study, is expected to be very effective in realizing the PK with good processability, heat resistance and mechanical properties.

Author(s):  
MD Imrul Reza Shishir ◽  
Alireza Tabarraei

Abstract Graphene sheets produced by chemical vapor deposition (CVD) are polycrystalline and the presence of grain boundaries (GBs) alter their mechanical properties relative to single-crystal graphene. In this study, we have performed a series of molecular dynamics simulations using REBO2+S potential in order to develop a failure criterion for infinite polycrystalline graphene sheets under biaxial tension. We have studied the effect of temperature on mechanical properties of polycrystalline graphene for both uniaxial and biaxial loading conditions. The normal stresses are normalized with respect to the corresponding uniaxial ultimate strength values and the normalized stresses are used to define the failure envelope of polycrystalline graphene. Our study suggests that a bilinear failure envelope or a circular failure envelope can be used to represent with reasonable accuracy the tensile strength of polycrystalline graphene under biaxial loading at different temperatures.


ACS Nano ◽  
2013 ◽  
Vol 7 (8) ◽  
pp. 6522-6532 ◽  
Author(s):  
Yu-Fen Lu ◽  
Shun-Tsung Lo ◽  
Jheng-Cyuan Lin ◽  
Wenjing Zhang ◽  
Jing-Yu Lu ◽  
...  

Author(s):  
Xue Ming Henry Huang ◽  
Robert Caldwell ◽  
Bhupesh Chandra ◽  
Seong Chan Jun ◽  
Mingyuan Huang ◽  
...  

Carbon nanotubes hold great promise for a number of applications due to their outstanding electrical, thermal, and mechanical properties. However, nanomanufacturing issues constitute a major area of challenge for successful implementation of nanotubes. In particular, because subtle changes in physical structure (chirality) can cause the electronic structure to vary from metallic to semiconducting, the goal of fully controlled nanotube device fabrication has proven elusive. In addition, materials compatibility issues impose significant limitations toward integration of nanotubes with many substrates and systems. We have developed techniques for nanotube device manufacture that rely upon mechanical transfer of chemical vapor deposition (CVD)-grown nanotubes from one substrate to another. These techniques can be used on the level of individual nanotubes, for controlled fabrication of arrays, or for manufacture of thin films.


Polymer ◽  
2017 ◽  
Vol 123 ◽  
pp. 321-333 ◽  
Author(s):  
Madhumita Mukherjee ◽  
Saikat Mukherjee ◽  
Rajan Kumar ◽  
Raja Shunmugam

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