| Literature DB >> 29043486 |
Xiaoyu Zhou1, Xinwei Liu1, Wenbo Cao1, Xiao Wang2, Ming Li1, Haoxue Qiao3, Zheng Ouyang4,5.
Abstract
Gaussian distribution has been utilized to describe the global number density distribution of ion cloud in the Paul trap, which is known as the thermal equilibrium theory and widely used in theoretical modeling of ion clouds in the ion traps. Using ion trajectory simulations, however, the ion clouds can now also be treated as a dynamic ion flow field and the location-dependent features could now be characterized. This study was carried out to better understand the in-trap ion cloud properties, such as the local particle velocity and temperature. The local ion number densities were found to be heterogeneously distributed in terms of mean and distribution width; the velocity and temperature of the ion flow varied with pressure depending on the flow type of the neutral molecules; and the "quasi-static" equilibrium status can only be achieved after a certain number of collisions, for which the time period is pressure-dependent. This work provides new insights of the ion clouds that are globally stable but subjected to local rf heating and collisional cooling. Graphical Abstract ᅟ.Entities:
Keywords: Gas field; Ion cloud; Ion trajectory simulation; Local ion distribution
Year: 2017 PMID: 29043486 DOI: 10.1007/s13361-017-1814-9
Source DB: PubMed Journal: J Am Soc Mass Spectrom ISSN: 1044-0305 Impact factor: 3.109