Burnside Paul W, Price Stephen D
Chemistry Department, University College London, 20 Gordon Street, London, UK.
Phys Chem Chem Phys. 2007 Aug 7;9(29):3902-13. doi: 10.1039/b704645f. Epub 2007 Jun 6.
Collisions between Cl(2+) and CO have been investigated using time-of-flight mass spectrometry over a collision energy range between 2.2 eV and 7.1 eV in the centre-of-mass frame. The formation of Cl(+), CO(+) and C(+) in electron transfer reactions has been detected and an unusual bond-forming reaction which generates CCl(2+) has also been observed. The reactive cross-sections, in arbitrary units, for the electron transfer reactions have been evaluated. To extract these cross sections we employ a new method of analysing mass spectral intensities for crossed-beam experiments, an algorithm which allows inter-comparison of the fluxes of all the ionic products from the electron transfer reactions. The observed electron transfer reactivity has been rationalized by calculations based on Landau-Zener theory. To account for the observation of CCl(2+), we have calculated the relevant energetics showing that the lowest lying doublet state of this dication is bound and is energetically accessible at our collision energies. These energetic arguments indicate that electron transfer in the exit channel between the separating CCl(2+) and O atom probably forms C(+) ions via the dissociation of CCl(+). Additionally, collisions between HCl(2+) and CO have been studied at collision energies from 2.2 to 7.0 eV in the centre-of-mass frame. In this collision system, proton transfer to form HCO(+) is observed to compete efficiently with dissociative and non-dissociative electron transfer.
利用飞行时间质谱法,在质心参考系中2.2电子伏特至7.1电子伏特的碰撞能量范围内,对Cl(2+)与CO之间的碰撞进行了研究。已检测到电子转移反应中Cl(+)、CO(+)和C(+)的形成,并且还观察到了一个生成CCl(2+)的异常成键反应。已评估了电子转移反应的反应截面(以任意单位表示)。为了提取这些截面,我们采用了一种新方法来分析交叉束实验的质谱强度,该算法允许对电子转移反应中所有离子产物的通量进行相互比较。基于朗道 - 齐纳理论的计算对观察到的电子转移反应活性进行了合理解释。为了解释CCl(2+)的观测结果,我们计算了相关的能量学,结果表明该双离子的最低能级双重态是束缚态,并且在我们的碰撞能量下在能量上是可及的。这些能量学论据表明,在分离的CCl(2+)和O原子之间的出射通道中的电子转移可能通过CCl(+)的解离形成C(+)离子。此外,在质心参考系中2.2至7.0电子伏特的碰撞能量下,研究了HCl(2+)与CO之间的碰撞。在该碰撞系统中,观察到质子转移形成HCO(+)与解离性和非解离性电子转移有效竞争。