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The structure of subcritical and supercritical methanol by neutron diffraction, empirical potential structure refinement, and spherical harmonic analysis

机译:中子衍射,经验势结构细化和球谐分析的亚临界和超临界甲醇结构

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Pulsed neutron diffraction with isotope substitution on the hydroxyl hydrogens (H) is used to study the structure of methanol in two supercritical conditions (253 degrees C, 117.7 MPa, 0.700 g cm(-3) and 253 degrees C, 14.3 MPa, 0.453 g cm(-3)) as well as a subcritical state (202 degrees C, 73.7 MPa, 0.700 g cm(-3)) (T-c=240 degrees C, P-c=8.1 MPa, rho(c)=0.272 g cm(-3) for methanol). From three experiments on CD3OD, CD3OH, and a CD3O(H-0.28+D-0.72) mixture at the three thermodynamic states, the composite partial structure factors and pair correlation functions, XX, XH, and HH, are derived, where X represents a weighted sum of correlations from carbon (C), oxygen (O), and methyl hydrogen (M) atoms on the methanol molecule. The data are used in an empirical potential structure refinement (EPSR) computer simulation of methanol at the three thermodynamics states. Model distributions of molecules consistent with these data are used to estimate the individual site-site radial distribution functions, the coefficients of the spherical harmonic expansion of the orientational pair correlation function, the details of hydrogen bonding, and the three-dimensional structure of clusters formed in subcritical and supercritical methanol. In both subcritical and supercritical states of moderate density, the hydrogen bonds remain, with the average number of hydrogen bonds of 1.6 +/- 0.1 per molecule and the average chain-length of 3.1 +/- 0.4 molecules, which are less than the 1.77 +/- 0.07 per molecule and 5.5 +/- 1.0 molecules, respectively, found under ambient conditions; however, in the subcritical and supercritical methanol at moderate density the hydrogen bonds are mostly associated with clusters of 3-5 methanol molecules, in contrast with ambient methanol in which methanol molecules are involved in a nonlinear hydrogen bonded chain structure. In the low-density supercritical methanol, the large clusters are broken to generate monomers or small oligomers; the average number of hydrogen bonds per molecule decreases to 1.0 +/- 0.1, and the chain-length is 1.8 +/- 0.2 with a maximum length up to 7. The present results are compared with those recently obtained by molecular dynamics simulations, NMR, and Raman scattering of supercritical methanol. (C) 2000 American Institute of Physics. [S0021-9606(00)50819-8]. [References: 31]
机译:氢原子(H)上同位素取代的脉冲中子衍射用于研究两种超临界条件(253摄氏度,117.7 MPa,0.700 g cm(-3)和253摄氏度,14.3 MPa,0.453 g cm(-3))和亚临界状态(202摄氏度,73.7 MPa,0.700 g cm(-3))(Tc = 240摄氏度,Pc = 8.1 MPa,rho(c)= 0.272 g cm(- 3)用于甲醇)。从在三个热力学状态下对CD3OD,CD3OH和CD3O(H-0.28 + D-0.72)混合物进行的三个实验中,得出复合部分结构因子和对相关函数XX,XH和HH,其中X表示甲醇分子上碳(C),氧(O)和甲基氢(M)原子的相关性的加权和。该数据用于在三个热力学状态下的甲醇的经验势结构优化(EPSR)计算机模拟。与这些数据一致的分子模型分布用于估计各个位点-径向分布函数,取向对相关函数的球谐展开系数,氢键的细节以及形成的团簇的三维结构在亚临界和超临界甲醇中。在中等密度的亚临界和超临界状态下,氢键均保留,每分子平均氢键数量为1.6 +/- 0.1,平均链长为3.1 +/- 0.4分子,小于1.77在环境条件下分别为每分子+/- 0.07和5.5 +/- 1.0分子;但是,在中等密度的亚临界和超临界甲醇中,氢键主要与3-5个甲醇分子簇相关,而周围的甲醇中,甲醇分子参与非线性的氢键链结构。在低密度超临界甲醇中,大的团簇被破坏而生成单体或小的低聚物。每个分子的平均氢键数减少至1.0 +/- 0.1,链长为1.8 +/- 0.2,最大长度为7。将当前结果与最近通过分子动力学模拟NMR获得的结果进行比较和超临界甲醇的拉曼散射。 (C)2000美国物理研究所。 [S0021-9606(00)50819-8]。 [参考:31]

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