首页> 外文期刊>The Journal of Chemical Physics >Vibrational mode-selected differential scattering of NH3+ methanol (d(1), d(3), d(4)): Control of product branching by hydrogen-bonded complex formation
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Vibrational mode-selected differential scattering of NH3+ methanol (d(1), d(3), d(4)): Control of product branching by hydrogen-bonded complex formation

机译:振动模式选择的NH3 +甲醇的微分散射(d(1),d(3),d(4)):通过氢键配合物的形成来控制产物支化

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We report a study of vibrational mode effects and differential scattering in reaction of NH3+ with CD3OD, CD3OH, and CH3OD over the collision energy range from 0.1 to 5 eV. At low collision energies, abstraction of both methyl and hydroxyl D atoms is observed with roughly equal probability, even though methyl D-abstraction should be favored on both energetic and statistical grounds. Branching between the two abstraction reactions is controlled by two different hydrogen-bonded complexes. Formation of these complexes is enhanced by NH: umbrella bending, unaffected by the NH3+ symmetric stretch, and inhibited by collision energy. Endoergic proton transfer is mediated at low energies by a third hydrogen-bonded complex, formation of which is enhanced by both umbrella bending and the symmetric stretch. Charge transfer (CT) has a significant cross section only when the NH3+ umbrella bend excitation exceeds the endoergicity. Collision energy and symmetric stretching appear to have no effect on CT. At high collision energies all reactions become direct, with near spectator stripping dynamics. In this energy range product branching appears to be controlled by collision geometry and there are no significant vibrational effects. (C) 1998 American Institute of Physics. [References: 37]
机译:我们报告了在碰撞能量范围从0.1到5 eV范围内,NH3 +与CD3OD,CD3OH和CH3OD反应的振动模式效应和微分散射的研究。在低碰撞能量下,即使在能量和统计方面都应赞成甲基D的提取,但观察到甲基和羟基D原子的提取几率几乎相等。两个抽象反应之间的分支由两个不同的氢键配合物控制。 NH:伞形弯曲,不受NH3 +对称拉伸的影响,并受到碰撞能量的抑制,从而增强了这些配合物的形成。内能质子转移在低能量下由第三氢键结合的复合物介导,该复合物的形成通过伞形弯曲和对称拉伸而增强。仅当NH3 +伞形弯曲激发超过内能作用时,电荷转移(CT)才具有明显的横截面。碰撞能量和对称拉伸似乎对CT没有影响。在高碰撞能量下,所有反应都变成直接反应,具有近乎观众的剥离动态。在此能量范围内,产物分支似乎受碰撞几何形状控制,并且没有明显的振动影响。 (C)1998美国物理研究所。 [参考:37]

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