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通过阈值碰撞诱导解离和理论对水合镍二价阳离子配合物进行热化学研究。

Thermochemical Investigations of Hydrated Nickel Dication Complexes by Threshold Collision-Induced Dissociation and Theory.

作者信息

Coates Rebecca A, Armentrout P B

机构信息

Department of Chemistry, University of Utah , 315 South 1400 East, Room 2020, Salt Lake City, Utah 84112, United States.

出版信息

J Phys Chem A. 2017 May 18;121(19):3629-3646. doi: 10.1021/acs.jpca.7b00635. Epub 2017 May 5.

Abstract

The experimental bond energies of Ni(HO) complexes, where x = 4-11, are determined by threshold collision-induced dissociation using a guided ion beam tandem mass spectrometer with an electrospray ionization source. The electrospray ionization source produces a distribution of Ni(HO) complexes, where an in-source fragmentation technique is employed to access the x = 4-6 complexes and control the population of excited isomers. The kinetic energy-dependent cross sections are modeled to yield 0 K bond energies for sequential loss of neutral water molecules, which are converted to 298 K binding energies. Analysis of the primary and secondary water losses from the Ni(HO) reactant ion complexes, x = 4-11, provide accurate thermochemistry for the hydration energies of Ni and yield the first experimental values for x = 4 and 5 binding energies. Speculative thermochemistry for excited isomers of the x = 4-6 complexes is also obtained. Quantum chemical calculations explore the relative energies of possible geometries. Theoretical bond energies for ground structures are used for direct comparison with experimental values. Our experimental results agree well with previously calculated and experimentally obtained binding enthalpies as well as with the more extensive quantum chemical calculations performed here.

摘要

通过使用带有电喷雾电离源的导向离子束串联质谱仪,采用阈值碰撞诱导解离法测定了x = 4 - 11的Ni(HO)配合物的实验键能。电喷雾电离源产生Ni(HO)配合物的分布,其中采用源内碎片化技术来获取x = 4 - 6的配合物并控制激发异构体的数量。对与动能相关的截面进行建模,以得出中性水分子依次损失时的0 K键能,这些键能随后被转换为298 K结合能。对x = 4 - 11的Ni(HO)反应物离子配合物的一次和二次水损失进行分析,为Ni的水合能提供了准确的热化学数据,并得出了x = 4和5结合能的首个实验值。还获得了x = 4 - 6配合物激发异构体的推测热化学数据。量子化学计算探索了可能几何结构的相对能量。将基态结构的理论键能用于与实验值进行直接比较。我们的实验结果与先前计算和实验获得的结合焓以及此处进行的更广泛的量子化学计算结果吻合良好。

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