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Published on: February 7, 2017
Hydrogen-Induced Morphological Changes in Semi-Crystalline Polyamides Investigated by 13C Solid-State Nuclear
Kee Sung Han1, Yongsoon Shin1, Eric D Walter2
1Physical and Computational Sciences Directorate, Pacific Northwest National Laboratory, Richland, Washington 99352, United States.
None:
The morphological variation of four semicrystalline polyamides─PA6, PA11, PA66, and PA612─under 250 psi hydrogen gas exposure was investigated using 13C cross-polarization (CP) and direct-polarization (DP) magic angle spinning (MAS) NMR. Additionally, two-dimensional 13C-1H wide-line separation (2D WISE) NMR provided insight into site-specific molecular dynamics. While all samples exhibited broadly similar segmental mobilities, PA6 showed slightly enhanced mobility at carbonyl sites, whereas PA612 displayed reduced mobility. The average chain mobility followed the trend: PA612 > PA6 > PA11 > PA66. Quantitative 13C NMR revealed the presence of a mobile amorphous or interfacial phase, most prevalent in PA11 (16%) and least in PA612 (9%). Initial crystallinity was highest in PA11 (36%) and lowest in PA612 (21%). Hydrogen exposure led to a marked reduction in crystallinity─up to 38% in PA612─followed by partial recovery upon depressurization. Site-specific analysis indicated the lowest crystallinity at carbonyl sites, with the unit end sites (CO and NH sites) showing distinct behavior between one-monomer (PA6 and PA11) and two-monomer (PA66 and PA612) polyamides. These findings suggest that hydrogen preferentially interacts with carbonyl and amide groups. A strong correlation was observed between chain mobility, the degree of crystallinity, and the reduction in the crystalline phase resulting from pressurization with 250 psi H2 gas. Among the polyamides studied, PA66 exhibited the greatest resistance to hydrogen-induced morphological changes, attributed to its higher crystallinity and reduced chain mobility. This underscores the importance of structural rigidity in enhancing polymer resilience under high-pressure hydrogen environments.
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