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Inelastic scattering dynamics of naphthalene and 2-octanone on highly oriented pyrolytic graphite

机译:高温热解石墨上萘和2-辛烷酮的非弹性散射动力学

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The inelastic scattering dynamics of the isobaric molecules, naphthalene (C10H8) and 2-octanone (C8H16O), on highly oriented pyrolytic graphite (HOPG) have been investigated as part of a broader effort to inform the inlet design of a mass spectrometer for the analysis of atmospheric gases during a flyby mission through the atmosphere of a planet or moon. Molecular beam-surface scattering experiments were conducted, and the scattered products were detected with the use of a rotatable mass spectrometer detector. Continuous, supersonic beams were prepared, with average incident translational energies, E-i, of 247.3 kJ mol(-1) and 538.2 kJ mol(-1) for naphthalene and 268.6 kJ mol(-1) and 433.8 kJ mol(-1) for 2-octanone. These beams were directed toward an HOPG surface, held at 530 K, at incident angles, theta (i), of 30 degrees, 45 degrees, and 70 degrees, and scattered products were detected as functions of their translational energies and scattering angles. The scattering dynamics of both molecules are very similar and mimic the scattering of atoms and small molecules on rough surfaces, where parallel momentum is not conserved, suggesting that the dynamics are dominated by a corrugated interaction potential between the incident molecule and the surface. The effective corrugation of the molecule-surface interaction is apparently caused by the structure of the incident molecule and the consequent myriad available energy transfer pathways between the molecule and the surface during a complex collision event. In addition, the HOPG surface contributes to the corrugation of the interaction potential because it can absorb significant energy from collisions with incident molecules that have high mass and incident energy. Small differences in the scattering dynamics of the two molecules are inferred to arise from the details of the molecule-surface interaction potential, with 2-octanone exhibiting dynamics that suggest a slightly stronger interaction with the surface than naphthalene. These results add to a growing body of work on the scattering dynamics of organic molecules on HOPG, from which insight into the hypervelocity sampling and analysis of such molecules may be obtained.
机译:已经研究了在高度取向的热解石墨(HOPG)上的异甲膦分子,萘(C10H8)和2-辛烷酮(C8H16O)的无弹性散射动力学作为更广泛的努力,以通知分析的质谱仪的入口设计通过行星或月亮的气氛在飞行使命期间的大气气体。进行分子束表面散射实验,并使用可旋转质谱仪检测器检测散射产物。制备连续的超音速梁,具有247.3kJ摩尔(-1)和538.2 kJ摩尔(-1)的平均事件平移能量,EI和538.2 kJ摩尔(-1),268.6 kJ摩尔(-1)和433.8 kJ摩尔(-1) 2-辛烷酮。这些光束针对以530k保持的跳跃表面,入射角,θ(i),30度,45度和70度,并且散射产品被检测为其平移能量和散射角度。两个分子的散射动力学非常相似,模仿原子和小分子在粗糙表面上的散射,其中不保守平行动量,表明动态是由入射分子和表面之间的波纹相互作用电位支配。分子表面相互作用的有效波纹显然是由入射分子的结构引起的,并且在复杂的碰撞事件期间分子和表面之间的随后的无数可用能量转移途径。此外,跳跃表面有助于相互作用电位的波纹,因为它可以吸收与具有高质量和入射能量的入射分子的碰撞中的显着能量。从分子表面相互作用电位的细节推断出两种分子的散射动力学的小差异,其中具有2-辛烷值表现出动态,表明与表面稍微强的相互作用而不是萘。这些结果增加了跳跃的有机分子散射动态的生长工作体,可以获得进入超胶质采样和这些分子的分析。

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