Electrostatic ion chromatography using hydroxide solutions as mobile phase with suppressed conductivity detection

被引:12
作者
Hu, WZ
Haddad, PR
Hasebe, K
Tanaka, K
机构
[1] Univ Tasmania, Dept Chem, Hobart, Tas 7001, Australia
[2] Hokkaido Univ, Grad Sch Sci, Div Chem, Sapporo, Hokkaido 0600810, Japan
[3] Hokkaido Univ, Grad Sch Environm Earth Sci, Div Sci Mat, Sapporo, Hokkaido 0600810, Japan
[4] Natl Ind Res Inst Nagoya, Kita Ku, Nagoya, Aichi 4628510, Japan
来源
ANALYTICAL COMMUNICATIONS | 1999年 / 36卷 / 08期
关键词
D O I
10.1039/a904668b
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
An electrostatic ion chromatography (EIC) method for the separation of inorganic anions with detection by suppressed conductivity has been developed, in which analyte retention times can be manipulated by variation of the composition of the mobile phase. A stationary phase prepared by coating silica-based octadecyl material with a sulfobetaine zwitterionic surfactant (Zwittergent 3-14) has been used in conjunction with aqueous hydroxide solutions as the mobile phase. Inorganic anions were eluted in the order SO42- < F- < Cl- < NO2- < Br- < NO3- < ClO3- < I-, with retention times increasing with increasing concentration of hydroxide in the mobile phase. Retention times were also dependent on the nature of the counter-cation in the mobile phase, with divalent cations such as Ca2+ and Ba2+ showing longer retention times than monovalent cations such as Li+ and Na+. A retention mechanism involving formation of a binary electrical double layer is proposed, with the thickness of the double layer (and hence analyte retention) being dependent on the concentration of the mobile phase. The EIC system showed high sensitivity for the analyte ions due to the efficiency of the suppression reaction. Detection limits for SO42-, F-, Cl-, NO2-, Br- and NO3- were less than 1.0 x 10(-7) mol L-1, whilst those for ClO3- and I- were 3.0 x 10(-7) mol L-1 and 7.0 x 10(-7) mol L-1, respectively, for a sample injection volume of 100 mu L.
引用
收藏
页码:309 / 312
页数:4
相关论文
共 8 条
[1]   Aqueous solutions of Zwitterionic surfactants with varying carbon number of the intercharge group .3. Intermicellar interactions [J].
Chevalier, Y ;
Kamenka, N ;
Chorro, M ;
Zana, R .
LANGMUIR, 1996, 12 (13) :3225-3232
[2]   Determination of inorganic anions by electrostatic ion chromatography with a cation exchange column as a pre-column for conversion of the cations into a common species [J].
Hasebe, K ;
Sakuraba, T ;
Hu, WZ .
JOURNAL OF LIQUID CHROMATOGRAPHY & RELATED TECHNOLOGIES, 1999, 22 (04) :561-569
[3]   Electrostatic ion chromatography using dilute electrolytes as eluents: a new method for separation of anions [J].
Hu, WZ ;
Haddad, PR .
ANALYTICAL COMMUNICATIONS, 1998, 35 (10) :317-320
[4]   Direct determination of bromide, nitrate, and iodide in saline matrixes using electrostatic ion chromatography with an electrolyte as eluent [J].
Hu, WZ ;
Haddad, PR ;
Hasebe, K ;
Tanaka, K ;
Tong, P ;
Khoo, C .
ANALYTICAL CHEMISTRY, 1999, 71 (08) :1617-1620
[5]   ELECTROSTATIC ION CHROMATOGRAPHY [J].
HU, WZ ;
TAKEUCHI, T ;
HARAGUCHI, H .
ANALYTICAL CHEMISTRY, 1993, 65 (17) :2204-2208
[6]   AQUEOUS-SOLUTIONS OF ZWITTERIONIC SURFACTANTS WITH VARYING CARBON NUMBER OF THE INTERCHARGE GROUP .1. MICELLE AGGREGATION NUMBERS [J].
KAMENKA, N ;
CHEVALIER, Y ;
ZANA, R .
LANGMUIR, 1995, 11 (09) :3351-3355
[7]   AQUEOUS-SOLUTIONS OF ZWITTERIONIC SURFACTANTS WITH VARYING CARBON NUMBER OF THE INTERCHARGE GROUP .2. ION-BINDING BY THE MICELLES [J].
KAMENKA, N ;
CHORRO, M ;
CHEVALIER, Y ;
LEVY, H ;
ZANA, R .
LANGMUIR, 1995, 11 (11) :4234-4240
[8]   Ion uptake by zwitterionic surfaces [J].
Okada, T ;
Patil, JM .
LANGMUIR, 1998, 14 (21) :6241-6248