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Ab Initio Studies of Cellulose I: Crystal Structure, Intermolecular Forces, and Interactions with Waterud

机译:纤维素I的从头算研究:晶体结构,分子间作用力以及与水的相互作用 ud

摘要

We have studied the structural, energetic, and electronic properties of crystalline cellulose I using first-principles density functional theory (DFT) with semiempirical dispersion corrections. The predicted crystal structures of both Iα and Iβ phases agree well with experiments and are greatly improved over those predicted by DFT within the local and semilocal density approximations. The cohesive energy is analyzed in terms of interchain and intersheet interactions, which are calculated to be of similar magnitude. Both hydrogen bonding and van der Waals (vdW) dispersion forces are found to be responsible for binding cellulose chains together. In particular, dispersion corrections prove to be indispensable in reproducing the equilibrium intersheet distance and binding strength; however, they do not improve the underestimated hydrogen bond length from DFT. The computed energy gaps of crystalline cellulose are 5.7 eV (Iα) and 5.4 eV (Iβ), whereas localized surface states appear within the gap for surfaces. The interaction of cellulose with water is studied by investigating the adsorption of a single water molecule on the hydrophobic Iβ(100) surface. The formation of hydrogen bond at the water/cellulose interface is shown to depend sensitively on the adsorption site for example above the equatorial hydroxyls or the CH moieties pointing out of the cellulose sheets. VdW dispersion interactions also contribute significantly to the adsorption energy.
机译:我们已经使用第一原理密度泛函理论(DFT)和半经验色散校正研究了结晶纤维素I的结构,能量和电子性质。 Iα和Iβ相的预测晶体结构与实验吻合得很好,并且在局部和半局部密度近似范围内大大优于DFT预测的晶体结构。根据链间相互作用和片间相互作用来分析内聚能,这些相互作用被计算为具有相似的大小。已发现氢键和范德华力(vdW)的分散力都可将纤维素链结合在一起。特别地,色散校正被证明是再现平衡片间距离和粘合强度必不可少的。但是,它们并不能改善DFT中被低估的氢键长度。晶体纤维素的计算能隙为5.7 eV(Iα)和5.4 eV(Iβ),而局部表面态出现在表面的能隙内。通过研究单个水分子在疏水Iβ(100)表面上的吸附来研究纤维素与水的相互作用。已显示在水/纤维素界面处氢键的形成敏感地取决于吸附位点,例如在赤道羟基或从纤维素片层中伸出的CH部分上方。 VdW分散相互作用也极大地促进了吸附能。

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  • 年度 2011
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  • 正文语种 {"code":"en","name":"English","id":9}
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