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首页> 外文期刊>ACS Omega >Computational Characterization of Nylon 4, a Biobased and Biodegradable Polyamide Superior to Nylon 6
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Computational Characterization of Nylon 4, a Biobased and Biodegradable Polyamide Superior to Nylon 6

机译:尼龙4的计算特性,尼龙4是一种优于尼龙6的可生物降解的生物基聚酰胺。

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This study is an attempt to develop a theoretical methodology to elucidate or predict the structural characteristics and the physical properties of an isolated polymeric chain and its crystalline state precisely and quantitatively. To be more specific, conformational characteristics of a biobased and biodegradable polyamide, nylon 4, in the free state have been revealed by not only ab initio molecular orbital calculations on its model compound but also nuclear magnetic resonance experiments for the model and nylon 4. Furthermore, the crystal structure and solid-state properties of nylon 4 have been elucidated by density functional theory calculations with a dispersion force correction under periodic boundary conditions. In the free state, the nylon 4 chain forms intramolecular N–H···O═C hydrogen bonds, which force the polymeric chain into distorted conformations including a number of gauche bonds, whereas nylon 4 crystallizes in the fully extended all-trans structure (α form) that is stabilized by intermolecular N–H···O═C hydrogen bonds. The intermolecular interaction energy (ΔECP) in the crystal was accurately calculated via a counterpoise (CP) method contrived here to correct the basis set superposition error, and the ultimate crystalline modulus (Eb) in the chain axis (b axis) direction at 0 K was also evaluated theoretically. The results were compared with those obtained from the α and γ crystalline forms of nylon 6, and, consequently, the superiority of nylon 4 to nylon 6 in thermal stability and mechanical properties was indicated: the ΔECP and Eb values are, respectively, ?214 cal g–1 and 334 GPa (nylon 4), ?191 cal g–1 and 316 GPa (α form of nylon 6), and ?184 cal g–1 and 120 GPa (γ form of nylon 6). In conclusion, nylon 4 is expected to be put to practical use as a tough environmentally friendly polyamide.
机译:这项研究是尝试发展一种理论方法,以精确和定量地阐明或预测分离的聚合物链的结构特征和物理特性及其结晶状态。更具体地,不仅通过对其模型化合物的从头算分子轨道计算,而且还通过模型和尼龙4的核磁共振实验,揭示了处于游离状态的生物基可生物降解聚酰胺尼龙4的构象特征。 ,已经通过密度泛函理论计算并在周期性边界条件下校正了色散力,阐明了尼龙4的晶体结构和固态性能。在自由状态下,尼龙4链形成分子内N–H···O═C氢键,这迫使聚合物链变形为包括许多gauche键的构象,而尼龙4在完全延伸的全反式结构中结晶(α形式)通过分子间N–H···O═C氢键稳定。晶体中的分子间相互作用能(ΔECP)通过此处设计的平衡(CP)方法精确计算出来,以校正基组叠加误差以及链轴(b轴)方向的最终晶体模量(Eb)在0 K在理论上也进行了评估。将结果与从尼龙6的α和γ晶型获得的结果进行了比较,结果表明,尼龙4在热稳定性和机械性能方面优于尼龙6:ΔECP和Eb值分别为?214 cal g-1和334 GPa(尼龙4)、? 191 cal g-1和316 GPa(尼龙6的α形式),以及184 cal g-1和120 GPa(尼龙6的γ形式)。综上所述,尼龙4有望作为一种坚韧的环保聚酰胺投入实际使用。

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