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    采用氧化物方式高精度测量微量样品钕同位素比值

    李潮峰 陈福坤 王芳

    李潮峰, 陈福坤, 王芳, 2008. 采用氧化物方式高精度测量微量样品钕同位素比值. 地球科学, 33(2): 243-250.
    引用本文: 李潮峰, 陈福坤, 王芳, 2008. 采用氧化物方式高精度测量微量样品钕同位素比值. 地球科学, 33(2): 243-250.
    LI Chao-feng, CHEN Fu-kun, WANG Fang, 2008. Precise Measurement of Nd Isotopic Ratio of Micro-Samples Using NdO+ Method. Earth Science, 33(2): 243-250.
    Citation: LI Chao-feng, CHEN Fu-kun, WANG Fang, 2008. Precise Measurement of Nd Isotopic Ratio of Micro-Samples Using NdO+ Method. Earth Science, 33(2): 243-250.

    采用氧化物方式高精度测量微量样品钕同位素比值

    基金项目: 

    科技部国家重点基础研究发展计划 2006CB403505

    国家自然科学基金项目 40525007

    详细信息
      作者简介:

      李潮峰(1976-), 男, 工程师, 同位素地球化学专业.E-mail: lichaofeng2006@yahoo.com.cn

    • 中图分类号: P597

    Precise Measurement of Nd Isotopic Ratio of Micro-Samples Using NdO+ Method

    • 摘要: 微量样品Nd同位素比值的高精度测定在地球科学和环境科学研究中具有重要的意义, 同时也是同位素测定的难点.对1ng以下的国际标准样品进行了高精度质谱测试.采用新一代高精度热电离质谱计(IsoProbe-T) 分别运用Nd+和NdO+测试方法, 多次测量常量(≥200ng) 和超微量(0.25ng、0.5ng和1ng) Nd标准物质(Ames、JMC和Jndi-1) 和实验室内部标准LRIG-Nd溶液.质谱计同位素比值测量均采用静态多接收模式.143Nd/144Nd比值测量的内部精度均优于0.003%.与传统的Nd+测量方式相比, NdO+测量方式具有显著的优势, 即有极高的灵敏度, 是Nd+分析灵敏度的100倍左右.

       

    • 图  1  采用Nd+和NdO+测量方式测定标准物质143Nd/144Nd同位素比值

      Fig.  1.  143Nd/144Nd isotopic ratios of standard material with Nd+ technique and NdO+ technique

      表  1  不同测量方式所需的质谱计接收器的排列方式

      Table  1.   Collector arrangement scheme for different measurement techiques

      表  2  采用Nd+和NdO+测量方式测定标准物质143Nd/144Nd同位素比值

      Table  2.   143Nd/144Nd isotopic ratios of standard material with Nd+ technique and NdO+ technique

      表  3  报道的氧同位素组成对比

      Table  3.   Compilation of the oxygen isotope ratios published in the literature

      表  4  标准物质Jndi-1测量数据采用不同方法校正143Nd/144Nd比值的对比

      Table  4.   Comparison with different mass fraction calibration laws for Jndi-1 standard material

      表  5  采用NdO+测量方式对标准物质测试结果与对比

      Table  5.   Comparison of recommended value and determination results of standard material with NdO+ technique

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    出版历程
    • 收稿日期:  2007-06-08
    • 刊出日期:  2008-03-25

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