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基于光化学锂同位素分离条件的同位素比率测量 被引量:2

Measurement on Isotope Ratio in Process of Photo-chemical Lithium Isotope Separation
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摘要 从光化学锂同位素分离实验研究的需求出发,基于其分离条件,提出了一种测量锂同位素比率的方法。该方法利用锂原子蒸气对探测光吸收峰的峰值来计算锂的同位素比率,避开了测量原子密度时所需的吸收信号频率定标与光强随频率变化积分中积分限的选择问题。该方法还根据锂同位素吸收谱的特殊性采用具有较强吸收效应的6 Li的D2线对应的吸收峰峰值,可在原子蒸气中6 Li含量较低时提高对比率的测量精度。设计并搭建了实验装置,对该方法进行了测试。同一条件下所测得的同位素比率相对标准偏差小于1%,表明该方法对光化学分离方法中锂同位素比率相对变化是敏感的。这意味着该方法可作为以原子蒸气为分离介质的激光锂同位素分离研究的诊断手段。 A method for measuring the isotope ratio in a photo-chemical lithium isotope separation process based on separation conditions was proposed . Instead of doing integration around the absorption peaks ,which was often conducted in calculating the isotope ratio from experimental curves , the peak’ s values were used to compute the isotope ratio of the lithium .The advantage of this procedure is that the complicated scaling operation for experimental curves can be avoided .The use of D2 line of 6 Li with stronger absorption effect can help to improve the measurement precision w hen the content of 6 Li in atomic vapor is low .An experimental setup was built and tested .In one experimental condition the relative standard deviation of the measured isotope ratio is less than 1% ,w hich show s that the method is sensitive to the change of the isotope ratio in a photo-chemical lithium isotope separation process .It means that the method is applicable as a diagnostic tool in the study of lithium atomic vapor laser isotope separation .
出处 《原子能科学技术》 EI CAS CSCD 北大核心 2014年第5期792-796,共5页 Atomic Energy Science and Technology
关键词 激光同位素分离 同位素比率 光化学法同位素分离 laser isotope separation lithium isotope ratio photo-chemical isotope sep-aration
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参考文献8

  • 1MYERS E G, MURNICK D E, SOFTKY W R. Isotope selective laser enhancement of the Li + H2 reaction[J]. Appl Phys B, 1987, 43: 247- 251. 被引量:1
  • 2OLIVARES I E, ROJAS C. Atomic lithium va- por laser isotope separation[J]. Revista Mexica- na de Fisica, 2002, 48(S3): 72-73. 被引量:1
  • 3SALEEM M, HUSSAIN S. Laser isotope sepa- ration of lithium by two-step photoionization[J]. Journal of Applied Physics, 2006, 100: 053111. 被引量:1
  • 4匡一中.我国激光分离同位素的研究现状[J].中国激光,1985,12(2):65-69. 被引量:1
  • 5陆同兴,路铁群..激光光谱技术原理及应用 第2版[M].合肥:中国科学技术大学出版社,2006:346.
  • 6顾志国,李在均,杨杰.锂同位素分离[J].化学进展,2011,23(9):1892-1905. 被引量:21
  • 7GALLAGHER A. Noble-gas broadening of the Li resonance line[J]. Physical Review A, 1975, 12(1): 133- 138. 被引量:1
  • 8COURSEY J S, SCHWAB D J, TSAI J J, et al. Atomic weights and isotopic compositions, Ver- sion 3. 0[R/OL]. Gaithersburg, MD: National Institute of Standards and Technology, (2010) [2013-06-25]. http ://physics. nist. gov/comp. 被引量:1

二级参考文献123

  • 1de Vries A E. Z. Naturf. , 1959, 14a: 764. 被引量:1
  • 2Wagner G, Pelz A, Higatsberger M. Monat. Chem. , 1954, 85 : 464-466. 被引量:1
  • 3Wagner G, Pelz A. Monat. Chem. , 1955, 86:414-18. 被引量:1
  • 4Peters K. AT 204052,1959. 被引量:1
  • 5Peters K. GB 866720, 1961. 被引量:1
  • 6Taniguchi S, Shioya I, Toyama O, Hayakawa T. Engineering and Natural Sciences, 1960, 9 : 59-62. 被引量:1
  • 7Yanase S, Hayama W, Oi T. Z. Naturforsch. , 2003, 58: 306-312. 被引量:1
  • 8Zenzai K, Yanase S, Zhang Y H, Oi T. Prog. Nucl. Energy, 2008, 50:494-498. 被引量:1
  • 9Yanase S, Oi T, Hashikawa S. J. Nucl. Sci. Technol. , 2000, 37:919-923. 被引量:1
  • 10Mouri M, Yanase S, Oi T. J. Nucl. Sci. Technol. , 2008, 45: 384-389. 被引量:1

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