Direct Determination of Tellurium in Simulated Nuclear Spent Fuels by Hydride Generation-Inductively Coupled Plasma Atomic Emission Spectrometry

수소화물 생성-유도결합플라스마 원자방출분광법을 이용한 모의사용후 핵연료 중의 텔루르 분석

  • Choi, Kwang Soon (Nuclear Chemistry Research Team, Korea Atomic Energy Research Institute) ;
  • Lee, Chang Heon (Nuclear Chemistry Research Team, Korea Atomic Energy Research Institute) ;
  • Han, Sun Ho (Nuclear Chemistry Research Team, Korea Atomic Energy Research Institute) ;
  • Joe, Kih Soo (Nuclear Chemistry Research Team, Korea Atomic Energy Research Institute) ;
  • Kim, Won Ho (Nuclear Chemistry Research Team, Korea Atomic Energy Research Institute)
  • 최광순 (한국원자력연구소 원자력화학연구팀) ;
  • 이창헌 (한국원자력연구소 원자력화학연구팀) ;
  • 한선호 (한국원자력연구소 원자력화학연구팀) ;
  • 조기수 (한국원자력연구소 원자력화학연구팀) ;
  • 김원호 (한국원자력연구소 원자력화학연구팀)
  • Received : 2000.11.07
  • Published : 2000.12.25

Abstract

Tellurium in simulated nuclear spent fuels (SIMFUEL) has been determined by hydride generation-inductively coupled plasma atomic emission spectrometry (HG-ICP-AES). Parameters such as concentrations of HCl and $NaBH_4$, flow rate of HCl and $NaBH_4$ were optimized and then the effects of U, Mo, Pd, Rh and Ru on the Te intensity were investigated. A thiourea as a masking agent was used to eliminate or minimize such interferences specially caused by palladium. Tellurium was measured by HG-ICP-AES and ICP-MS after separation of tellurium from SIMFUEL with cation exchange chromatography. The relative deviation between direct measurement and separation method was less than 6% based on the data by ICP-MS.

수소화물 생성-유도결합플라스마 원자방출분광법(HG-ICP-AES)을 이용하여 모의사용후 핵연료(SIMFUEL) 중의 텔루르를 정량하였다. 염산과 $NaBH_4$의 농도 및 주입속도와 같은 변수들을 최적과 한 다음 각각 우라늄, 팔라듐, 루테늄, 로듐 및 몰리브덴의 간섭 정도를 조사하였다. 이들 원소, 특히 팔라듐으로부터 간섭을 줄이기 위하여 가리움제로 thiourea를 사용하였다. 모의사용후 핵연료로부터 텔루르를 양이온 교환 크로마토그래피로 분리한 다음 각각 HG-ICP-AES와 유도결합플라스마 질량분석법(ICP-MS)으로 측정하였다. 우라늄 매트릭스로부터 텔루르를 분리하지 않고 바로 전자로 측정한 결과와 분리한 다음 측정한 값의 상대편차는 ICP-MS의 결과를 기준으로 5.6%와 -1.2%이었다.

Keywords

References

  1. Analyst v.103 M. Thompson;B. Pahlavanpour;S. J. Walton
  2. Anal. Chem. v.64 Hengwu Chen;Ian D.
  3. J. Anal. At. Spectrom. v.10 Hilde Uggerud;Walter Lund
  4. Spectrochim. Acta. v.52B Ian D. Brindle;Emilia Lugowska
  5. J. Anal. At. Spectrom. v.10 Steve J. Hill;Les Pitts;Paul Worsfold
  6. Z. Anal. Chem. v.332 R. Bye;W. Lund;Fresenius' Z.
  7. Spectrochim, Acta. v.42B T. Nakahara;K. Nakanishi;T. Wasa
  8. Anal. Chim. Acta v.244 Narsito, J. Agterdenbos;D. Bax
  9. Anal. Chem. v.60 Charles Boampong;Ian D. Bax
  10. Analyst v.113 Ian D. Brindle;Xiao-chun Le
  11. J. Anal. At. Spectrom. v.4 Ian D. Brindle;Xiao-chun Le;Xing-fang Li
  12. Anal. Chim. Acta v.229 Ian D. Brindle;Xiao-chun Le
  13. Radio-chem, Acta v.1 A. Guillon;M. Colonomos;R. Sauvagnac
  14. Talanta v.10 M. Ward;J. K. Foreman
  15. 분석과학 v.13 no.4 최광순;손세철;표형열;서무열;김도양;박양순;지광용