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Separation and Sensitive Determination of Sb Species using Yeast Bonded Bio-column with Continuous Hydride Generation

이이스트 고정 bio칼럼을 이용한 Sb의 화학종분리 및 연속적 수소화물발생법에 의한 감도개선

  • Lee, Jeong-Ok (Department of Chemistry Education, Korea National University of Education) ;
  • Kwon, Hyo-Shik (School of Science Education, Chungbuk National University) ;
  • Pak, Yong-Nam (Department of Chemistry Education, Korea National University of Education)
  • 이정옥 (한국교원대학교 화학교육학과) ;
  • 권효식 (충북대학교 사범대학 과학교육학부) ;
  • 박용남 (한국교원대학교 화학교육학과)
  • Received : 2010.09.17
  • Accepted : 2010.10.27
  • Published : 2010.12.20

Abstract

Yeast is immobilized upon $100{\mu}m$ CPG(controlled pore glass bead) to separate $Sb^{3+}$ and $Sb^{5+}$. Continuous hydride generation is performed after the bio-column. The optimum conditions are 0.8 M nitric acid as an eluent with the flow rate of 1.0 mL $min^{-1}$ and the optimum conditions for the generation of hydride are 2 M HCl, 3% (w/v) $NaBH_4$ with the flow rate of 0.83 mL $min^{-1}$, Ar carrier gas flow rate of 50 mL $min^{-1}$. Two species are separated at 112 and 354 seconds each. The sensitivity is enhanced by 10 times for $200{\mu}L$ of sample and the detection limits are 3.0 ppb and 7.0 ppb for $Sb^{3+}$ and $Sb^{5+}$, respectively. When compared with the standard samples, this method showed accurate results.

매우 작은 유리구슬(직경 $100{\mu}m$이하)위에 이이스트를 공유결합시킨 bio컬럼을 제작하여 $Sb^{3+}$$Sb^{5+}$를 선택적으로 분리하고 연속적 수소화물 발생법을 이용하여 감도를 개선하였다. 최적 용리조건은 용리액 0.8 M 질산으로 흐름속도 1.0 mL $min^{-1}$이며 수소화물 발생의 최적조건은 HCl 2 M, 환원제로 $NaBH_4$ 3% (w/v), 흐름속도는 0.83 mL $min^{-1}$, 수소화물을 운반하는 아르곤기체의 흐름속도는 50 mL $min^{-1}$ 이었다. 이러한 조건에서 두 화학종의 분리시간은 각각 112초와 354초였다. $200{\mu}L$의 시료를 사용하였을 때 감도는 10 여배 개선되었고 검출한계는 $Sb^{3+}$$Sb^{5+}$에 대하여 각각 3.0 ppb와 7.0 ppb 이었다. 표준시료를 제작하여 분석한 결과, 정확한 결과를 얻을 수 있었다.

Keywords

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