论文标题
具有新的静态型四极离子陷阱质谱仪的K和氙同位素的高精度测量值
High-precision measurements of krypton and xenon isotopes with a new static-mode Quadrupole Ion Trap Mass Spectrometer
论文作者
论文摘要
测量行星气氛中贵重气体的丰度和同位素组成可以回答宇宙化学和比较行星学中的基本问题。但是,高贵的气体是罕见的元素,这一功能使其测量甚至在地球上都具有挑战性。此外,在航天器仪器容纳的空间应用,功耗,数量和质量限制中,需要开发紧凑的创新工具,能够满足任务的工程要求,同时仍满足科学要求。在这里,我们证明了在喷气推进实验室(Caltech,Pasadena)在静态操作模式下,在没有缓冲液(例如氦气)的情况下,在喷气推进实验室(Caltech,Pasadena)开发的四极离子陷阱质谱仪(QITM)的能力。敏感性达到1E13 CPS TORR-1(约1011 cps/pA)的气体(KR或XE)。该仪器能够在静态模式下测量气体长时间(长达48小时),从而使每个测量值获得数千个同位素比。同位素比的错误之后,对计数统计的预测,该仪器在数天的测量中提供了可再现的结果。例如,连续测量7小时的1.7e-10 Torr(2.3e-8 Pa)在86kR/84kr的比率上得出0.6渗透性精度。陆生和外星样品的测量结果从文献中繁殖值。基于QITMS设计的紧凑型仪器具有足够高的灵敏度,可以达到同位素比的精确度(例如,对于在金星气氛中收集的贵族气体的科学有效载荷,需要的是129,131-136XE/130XE比率的1%。
Measuring the abundance and isotopic composition of noble gases in planetary atmospheres can answer fundamental questions in cosmochemistry and comparative planetology. However, noble gases are rare elements, a feature making their measurement challenging even on Earth. Furthermore, in space applications, power consumption, volume and mass constraints on spacecraft instrument accommodations require the development of compact innovative instruments able to meet the engineering requirements of the mission while still meeting the science requirements. Here we demonstrate the ability of the quadrupole ion trap mass spectrometer (QITMS) developed at the Jet Propulsion Laboratory (Caltech, Pasadena) to measure low quantities of heavy noble gases (Kr, Xe) in static operating mode and in the absence of a buffer gas such as helium. The sensitivity reaches 1E13 cps Torr-1 (about 1011 cps/Pa) of gas (Kr or Xe). The instrument is able to measure gas in static mode for extended periods of time (up to 48 h) enabling the acquisition of thousands of isotope ratios per measurement. Errors on isotope ratios follow predictions of the counting statistics and the instrument provides reproducible results over several days of measurements. For example, 1.7E-10 Torr (2.3E-8 Pa) of Kr measured continuously for 7 hours yielded a 0.6 permil precision on the 86Kr/84Kr ratio. Measurements of terrestrial and extraterrestrial samples reproduce values from the literature. A compact instrument based upon the QITMS design would have a sensitivity high enough to reach the precision on isotope ratios (e.g. better than 1 percent for 129,131-136Xe/130Xe ratios) necessary for a scientific payload measuring noble gases collected in the Venus atmosphere.