초록
[16]-ane-$S_4$/탄소분말 함량비를 50%로 하여 nujol oil과 혼합하여 수식전극을 제조하였다. $5.0{\times}10^{-4}M$ $Ag^+$를 포함하는 pH 4.5인 아세트 완충용액에 수식전극을 담가 $Ag^+$를 전극 표면에 흡착시켰다. 이 때 흡착시간을 15분으로 하고 전해환원시키는 시간은 -0.3V vs S.C.E에서 2분으로 하였다. 또한 0.1M $HNO_3$ 용액으로 전극을 활성화시켰으며 한번 활성화한 전극은 10회까지 사용이 가능하였다. 최적 분석조건에서 미분펄스 전압전류법으로 $5.0{\times}10^{-7}{\sim}1.5{\times}10^{-6}M$ 사이의 농도 범위에서 정량해 보았을 때 직선성이 잘 성립하였으며, 검출한계는 $2.0{\times}10^{-7}M$이었다. 대부분의 금속들은 방해를 주지 않았으나, Cu(II)은 방해를 나타내었다.
Chemically modified electrodes(CMEs) for Ag(I) were constructed by incoporating 1,5,9,13-tetrathiacyclohexadecane([16]-ane-$S_4$) with a conventional carbon-paste mixture composed of graphite powder and nujol oil. Ag(I) ion was chemically deposited onto the surface of the modified electrode with [16]-ane-$S_4$ by immersion of the electrode in the acetate buffer solution(pH=4.5) containing $5.0{\times}10^{-4}M$ Ag(I) ion. And then the electrode deposited with Ag(I) was reduced at -0.3V vs. S.C.E. Well-defined stripping voltammetric peaks could be obtained by scanning the potential to the positive direction. The CME surface was regenerated with exposure to 0.1M $HNO_3$ solution and was reused for the determination of Ag(I) ion. When deposition/measurement/regeneration cycles were 10 times, the response could be reproduced with relative standard deviation of 6.08%. In case of differential pulse stripping voltammetry, the calibration curve for Ag(I) was linear over the range of $5.0{\times}10^{-7}{\sim}1.5{\times}10^{-6}M$. And the detection limit was $2.0{\times}10^{-7}M$. Various ions such as Cd(II), Ni(II), Pb(II), Zn(II), Mn(II), Mg(II), EDTA, and oxalate(II) did not influence the determination of Ag(I) ion, except Cu(II) ion.