東京大学 · 地球惑星科学
Takafumi Hirata教授の研究室では、多重コリレーターインダクティブに結合プラズマ質量分析計(MC-ICP-MS)を用いた高精度な同位体分析技術の開発を柱としています。特に、PbやCu、Feなどの同位体比の正確な測定に向け、質量分離効果の補正法やレーザー剥離法の最適化が進められています。また、若年齢ジルコンのU-Pb年代測定における高感度・高精度化を実現するためのHg除去デバイスの開発も行われており、地球科学研究の基盤技術の向上に貢献しています。
Figures are computed from collected data and may differ slightly.
A correction method for the mass discrimination effect was developed for isotopic analyses using multiple collector inductively coupled plasma mass spectrometry (MC-ICP-MS). For Pb isotopic analysis using MC-ICP-MS, the correction factor for the mass discrimination effect on Pb is based on the addition of TI to the sample solution and measurement of TI isotopic ratios; the correction factor obtained using Tl is directly applied to the Pb isotopes (conventional external correction). However, the
65Cu/63Cu and 56Fe/54Fe isotopic ratios for two metal reference materials (NIST SRM 976 and NIST SRM 665) have been measured by a laser ablation-multiple collector-inductively coupled plasma mass spectrometer (LA-MC-ICPMS). A time resolved analysis (TRA) data acquisition technique was used to monitor the time profile in 65Cu/63Cu and 56Fe/54Fe isotopic ratios. An ArF excimer laser (193 nm) which produces pit sizes of 16–63 µm was used to ablate Cu and Fe from metal samples. Measured 65Cu/63Cu ra
Precise 238U–206Pb ages for three Phanerozoic zircons (<600 Ma) have been measured using a laser ablation-ICPMS technique. In order to obtain reliable age data from young zircons, precise measurement of 204Pb intensity is highly important. To achieve this, a newly developed Hg-trap device using an activated charcoal filter was applied to the Ar make-up gas before mixing with He carrier gas, and the resulting isobaric interference on 204Pb by the 204Hg signal was significantly reduced. The level
A laser ablation technique has been developed for elemental and isotopic ratio analyses of solid materials using inductively coupled plasma mass spectrometry. Using a soft ablation technique developed in this study, reproducibility of the signal intensity and precision of the elemental and isotopic ratio measurement were successfully improved. The technique involves beginning the ablation at low laser power (lower than 1 mJ) and gradually increasing power to achieve a constant and stable signal.
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