毛细管区带电泳法测定l -抗坏血酸两步酸解离常数

Yuki Tanikami, H. Mizuguchi, T. Takayanagi
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引用次数: 0

摘要

通过毛细管区带电泳的有效电泳迁移率变化,测定了l -抗坏血酸(AA)的两步酸解离常数。虽然抗坏血酸在水溶液中是氧化降解的,特别是在碱性条件下,但在1.87 ~ 11.97的pH范围内成功地测量了AA的有效电泳迁移率。在分析弱酸性条件下的第一步酸解离常数(pKa1)时,采用1,3-丙磺酸包膜毛细管和压力辅助装置检测阴离子AA。在弱碱性条件下的第二步酸解离常数(pKa2)分析中,利用Cu催化剂去除分离缓冲液中的溶解氧,在pH高达11.97的范围内成功检测到AA。通过非线性最小二乘分析分别确定了酸解离常数pKa1 = 4.15±0.01和pKa2 = 12.07±0.04。AA在弱碱性pH范围内没有完全解离,并推断了AA离子形式的有效电泳迁移率用于分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Determination of Two-Steps Acid Dissociation Constants of L-Ascorbic Acid by Capillary Zone Electrophoresis
Two-steps acid dissociation constants of L-ascorbic acid (AA) were determined through the changes in the effective electrophoretic mobility in capillary zone electrophoresis. Although ascorbic acid is oxidatively degradable in an aqueous solution, especially in alkaline conditions, the effective electrophoretic mobility of AA was successfully measured in the pH range between 1.87 and 11.97. In the analysis of the first-step acid dissociation constant (pKa1) at weakly acidic pH conditions, a coated capillary with 1,3-propanesultone and a pressure-assist were utilized to detect anionic AA. In the analysis of the second-step acid dissociation constant (pKa2) at weakly alkaline pH conditions, AA was successfully detected at the pH range up to 11.97 with the help of Cu catalyst to remove the dissolved oxygen in the separation buffer. Acid dissociation constants were independently determined as pKa1 = 4.15±0.01 and pKa2 = 12.07±0.04 by non-linear least-squares analyses. AA did not fully dissociate at the weakly alkaline pH range, and the effective electrophoretic mobility of the dianion form of AA was extrapolated for the analysis.
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