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首页> 外文期刊>Journal of the American Society for Mass Spectrometry >Classical Trajectories and RRKM Modeling of Collisional Excitation and Dissociation of Benzylammonium and tert-Butyl Benzylammonium Ions in a Quadrupole-Hexapole-Quadrupole Tandem Mass Spectrometer
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Classical Trajectories and RRKM Modeling of Collisional Excitation and Dissociation of Benzylammonium and tert-Butyl Benzylammonium Ions in a Quadrupole-Hexapole-Quadrupole Tandem Mass Spectrometer

机译:四极-六极-四极串联质谱仪中苄基铵和叔丁基苄基铵离子的碰撞激发和解离的经典轨迹和RRKM模型

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Collision-induced dissociation of the benzylammonium and the 4-tert-butyl benzylammonium ions was studied experimentally in an electrospray ionization quadrupole-hexapole-quadrupole tandem mass spectrometer. ion fragmentation efficiencies were determined as functions of the kinetic energy of ions and the collider gas (argon) pressure. A theoretical Monte Carlo model of ion collisional excitation, scattering, and decomposition was developed. The model includes simulation of the trajectories of the parent and the product ions flight through the hexapole collision cell, quasiclassical trajectory modeling of collisional activation and scattering of ions, and Rice-Ramsperger-Kassel-Marcus (RRKM) modeling of the parent ion decomposition. The results of modeling demonstrate a general agreement between calculations and experiment. Calculated values of ion fragmentation efficiency are sensitive to initial vibrational excitation of ions, scattering of product ions from the collision cell, and distribution of initial ion velocities orthogonal to the axis of the collision cell. Three critical parameters of the model were adjusted to reproduce the experimental data on the dissociation of the benzylammonium ion: reaction enthalpy and initial internal and translational temperatures of the ions. Subsequent application of the model to decomposition of the t-butyl benzylammonium ion required adjustment of the internal ion temperature only. Energy distribution functions obtained in modeling depend on the average numbers of collisions between the ion and the atoms of the collider gas and, in general, have non-Boltzmann shapes.
机译:在电喷雾电离四极杆-六极杆-四极杆串联质谱仪中实验研究了碰撞诱导的苄基铵和4-叔丁基苄基铵离子的解离。确定离子破碎效率是离子动能和对撞机气体(氩气)压力的函数。建立了离子碰撞激发,散射和分解的理论蒙特卡洛模型。该模型包括通过六极碰撞池模拟母体和产物离子的轨迹,离子碰撞激活和散射的准经典轨迹模型以及母体离子分解的Rice-Ramsperger-Kassel-Marcus(RRKM)模型。建模结果证明了计算和实验之间的总体一致性。离子裂解效率的计算值对离子的初始振动激发,来自碰撞池的产物离子的散射以及垂直于碰撞池轴的初始离子速度的分布很敏感。调整了模型的三个关键参数,以重现有关苄基铵离子解离的实验数据:反应焓和离子的初始内部和转化温度。随后将该模型用于叔丁基苄基铵离子的分解仅需调整内部离子温度。在建模中获得的能量分布函数取决于离子与对撞气体原子之间的平均碰撞数,并且通常具有非玻尔兹曼形状。

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