Black David M, Payne Anne H, Glish Gary L
Kenan Laboratory, Department of Chemistry, University of North Carolina, 27599-3290, Chapel Hill, NC, USA.
J Am Soc Mass Spectrom. 2006 Jul;17(7):932-938. doi: 10.1016/j.jasms.2006.01.001. Epub 2006 May 12.
Collisional cooling rates of infrared excited ions are measured in a quadrupole ion trap (QIT) mass spectrometer at different combinations of temperature and pressure. Measurements are carried out by monitoring fragmentation efficiency of leucine enkephalin as a function of irradiation time by an infrared laser after a short excitation and incrementally increasing cooling periods. Cooling rates are observed to be directly related to bath gas pressure and inversely related to bath gas temperature. The cooling rate at typical ion trap operating pressure (1 mTorr) and temperature (room T) is faster than can be measured. At elevated temperature and the lowest pressure used for the studies, the rate of collisional cooling becomes negligible compared to the rate of radiative cooling.
在四极杆离子阱(QIT)质谱仪中,于不同温度和压力组合下测量了红外激发离子的碰撞冷却速率。测量通过监测亮氨酸脑啡肽的碎裂效率来进行,亮氨酸脑啡肽的碎裂效率是在短时间激发后,作为红外激光照射时间的函数,且冷却时间逐步增加。观察到冷却速率与缓冲气体压力直接相关,与缓冲气体温度成反比。在典型的离子阱工作压力(1毫托)和温度(室温)下,冷却速率快于可测量的速度。在研究中使用的高温和最低压力下,与辐射冷却速率相比,碰撞冷却速率变得可以忽略不计。