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Gas cooling secondary ions emitted by gas cluster ion beam at the travelling-wave ion guide of a Q-ToF-SIMS system

机译:气体冷却二次离子在Q-TOF-SIMS系统的行进波离子引导下通过气体簇离子束发射

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The work was aimed at using gas to cool the secondary ions emitted from gas cluster ion beam (GCIB) bombardment of biosamples for lowering the ion energy distribution and thus enhancing the detection sensitivity for secondary ion mass spectrometry (SIMS). An Ar-cluster ion source at energy in an order of keV was installed with the Q-ToF (Quadrupole Time-of-Flight) premier at the Quantum Science and Engineering Center, Kyoto University. The main component of the Q-ToF premier consisted of a travelling-wave ion guide, a mass filter quadrupole lens, a travelling-wave collision cell, and a ToF analyzer. A 1,2-Distearoyl-sn-glycero-3-phosphocholine (DSPC) sample was used in the study on cooling the secondary ions at the travelling-wave ion guide by using helium and molecular nitrogen gas. The DSPC sample was impinged with primary Ar-cluster ions at energy 10 keV and sputtered for secondary ions in an energy range from zero to several hundred eV. Sputtering emitted secondary ions were extracted to the Q-ToF mass spectrometer. The experiment was carried out to measure DSPC secondary ion mass spectra in two modes at varied pressures of helium or molecular nitrogen gas. The first mode was the MS mode and the other was the MS/MS mode which defined the m/x = 790.6 Da for the protonated molecule at the mass filter quadrupole lens. The experiment found that the secondary ion yields (SIYs) in the MS mode reached the maximum at 2.0 and 0.35 Pa for helium and molecular nitrogen, respectively. In the MS/MS mode, the SIYs reached the maximum at 2.5 and 0.35 Pa for helium and molecular nitrogen, respectively, and however, some fragments could not be eliminated by the cooling molecular nitrogen gas. The cooling of the secondary ions for lowering the energy distribution and the transverse direction of the secondary ions by using helium was more effective and stable than by using molecular nitrogen.
机译:该工作旨在使用气体来冷却从气体聚类离子束(Gcib)轰击的二次离子的生物素,从而降低离子能量分布,从而提高二次离子质谱(SIMS)的检测灵敏度。在京都大学Qualum科学和工程中心的Q-ToF(四轮桥飞行时间)总理安装了kev的能量的AR集聚离子源。 Q-TOF总理的主要成分由行进波离子引导,质量滤波四极镜,行波碰撞细胞和TOF分析仪组成。使用氦和分子氮气在流动波离子引导下冷却次级离子的研究中使用1,2- Distearoyl-Sn-甘油-3-普华啉(DSPC)样品。 DSPC样品在能量10KeV处用初级Ar簇离子冲击,并在能量范围内溅射为零至几百个EV。将溅射发出的二次离子萃取到Q-TOF质谱仪中。进行实验以在氦气或分子氮气的各种压力下以两种模式测量DSPC二次离子质谱。第一模式是MS模式,另一个是MS / MS模式,其在质量滤波器四极透镜处的质子化分子定义M / x = 790.6Da。实验发现,MS模式中的二次离子产率(Siys)分别达到氦和分子氮的最大值为2.0和0.35Pa。在MS / MS模式下,Siys分别达到2.5和0.35Pa的最大氦和分子氮,然而,通过冷却分子氮气不能消除一些片段。通过使用氦气降低能量分布的二次离子和二次离子的横向的冷却更有效且稳定,通过使用分子氮。

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