The hyperfine interaction in water-solvent system

물-용매계에서의 초미세 상호작용

  • 이미녕 (성균관대학교 자연과학부 화학전공) ;
  • 김태관 (성균관대학교 자연과학부 화학전공) ;
  • 이성기 (성균관대학교 자연과학부 화학전공) ;
  • 박윤창 (성균관대학교 자연과학부 화학전공)
  • Received : 2005.02.14
  • Accepted : 2005.03.02
  • Published : 2005.06.25

Abstract

The N hyperfine coupling constants ($a_N$) of di-t-butyl nitroxide (DTBN) radicals in water-solvent system were measured with EPR spectroscopy. Various kinds of the solvents with different polarity such as acetone, dimethylsulfoxide (DMSO), methanol, ethanol and 1-propanol were applied and studied. Equilibrium constants for the solvation equilibrium and the solvent parameters ($E_T$, molar transition energy) of various water-solvent system were obtained from the experimental results and are presented. The $a_N$ values were plotted as a function of mole fraction of the solvent. In case of water-DMSO, water-ethanol and water-1-propanol system, slight negative deviations from the straight line were observed. In water-acetone system, the absorption wavelength (${\lambda}$) due to ${\eta}{\rightarrow}{\pi}^{\ast}$ transition increased linearly with the increase of mole fraction of acetone. The relationship between $a_N$ of DTBN and ${\lambda}$ due to ${\eta}{\rightarrow}{\pi}^{\ast}$ transition in water-acetone and water-DMSO system was examined. It was found that the electronic structure of the nitroxide radicals is stablized from the fact that the N hyperfine coupling constants of DTBN radicals are greatly unaffected in the environment of water-solvent system.

물-용매계에서 용매의 몰분율 변화에 따른 di-t-butyl nitroxide (DTBN)의 N hyperfine coupling 상수($a_N$)를 EPR spectroscopy에 의하여 측정하였다. 아세톤, dimethylsulfoxide (DMSO), methanol, ethanol 그리고 1-propanol과 같이 서로 다른 값의 극성도를 갖는 용액들을 용매로서 사용하여 연구하였다. 물-용매계에서 DTBN의 $a_N$ 값으로부터 용매화 평형에 대한 평형상수값을 계산하였고, 또한 몰전이 에너지($E_T$) 값을 용매의 흡수스펙트럼 실험결과로부터 계산하여 제시하였다. 물-용매계에서 용매의 몰분율에 대한 $a_N$ 값들을 도시한 결과 물-DMSO, 물-ethanol과 물-1-propanol계의 경우에는 직선으로부터 약간의 음의 편차가 관측되었으나, 물-아세톤과 물-methanol계의 경우에는 거의 직선적인 관계가 있음을 알 수 있었다. 물-아세톤계의 경우 ${\eta}{\rightarrow}{\pi}^{\ast}$ 전이에 의한 흡수파장 (${\lambda}$)은 아세톤의 몰분율과 비례하여 증가하였다. 물-아세톤과 물-DMSO계에서 ${\eta}{\rightarrow}{\pi}^{\ast}$ 전이에 의한 ${\lambda}$ 값들이 증가함에 따라 $a_N$ 값들은 감소하였으며 이들 값들은 온도에 의하여 거의 영향을 받지 않고 있어 DTBN 라디칼들이 이러한 용매내에서 안정된 전자구조를 가지고 있음을 알 수 있었다.

Keywords

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