首页> 外文期刊>Journal of the Chemical Society, Dalton Transactions. Inorganic Chemistry >Acid-base and metal ion-binding properties of diaminopropyl D-glucopyranoside and diaminopropyl D-mannopyranoside compounds in aqueous solution
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Acid-base and metal ion-binding properties of diaminopropyl D-glucopyranoside and diaminopropyl D-mannopyranoside compounds in aqueous solution

机译:水溶液中二氨基丙基D-吡喃葡萄糖苷和二氨基丙基D-甘露吡喃糖苷化合物的酸碱和金属离子结合性能

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摘要

For three sugar-appended diamine compounds (1,3-diamino-2-propyl beta-D-glucopyranoside (2-beta-D-Glc-pn), (2S)-2,3-diaminopropyl beta-D-glucopyranoside (1-beta-D-Glc-pn) and 1,3-diamino-2-propyl alpha-D-mannopyranoside (2-alpha-D-Man-pn)), acidity constants and stability constants with Ni2+, Cu2+ and Zn2+ have been measured (I = 0.16 M NaCl, 25 degrees C). The two acidity constants of each of the three sugar-diamines differ by 10(1.65) to 10(3.09), indicating that removal of the proton from HL+ species is more difficult than deprotonation from the fully protonated dication H2L2+. Statistical and polar effects, as well as the formation of an intramolecular hydrogen bond, may cause this increased stability of the HL+ species. The strength of the hydrogen bond and the degree of its formation (percentage) were estimated. The sugar ring has only a small influence on the intramolecular hydrogen bond formation. For the different metal ion-ligand systems, the predominating species in solution are quite different. In the Cu2+-1-beta-D-Glc-pn system, the dominant species are always CuL2+ and CuL22+ in the pH range 4 to 10, where the total ligand concentration is larger than total metal ion concentration. For Ni2+, NiL32+ is also important under these same conditions; however, for Zn2+, the hydrolysis species ZnL2(OH)(+) and ZnL2(OH)(2) predominate in the high pH region. All possible species in the system were included during the calculations, and the corresponding stability constants were determined. The hydrolysis of the metal ions themselves is important in some cases and all possible hydrolysis species were included in the fitting calculation. The stability constant plots log K versus pK yielded straight reference lines for 1,3-diamine or 1,2-diamine ligands, reflecting the complete absence of sugar oxygen atoms in the metal ion coordination. The linkage between the metal ion and the diamine residue depends solely on the basicity of the ligand. [References: 37]
机译:对于三种加糖的二胺化合物(1,3-二氨基-2-丙基β-D-吡喃葡萄糖苷(2-beta-D-Glc-pn),(2S)-2,3-二氨基丙基β-D-吡喃葡萄糖苷(1 -β-D-Glc-pn)和1,3-二氨基-2-丙基α-D-甘露吡喃糖苷(2-alpha-D-Man-pnanopn)),与Ni2 +,Cu2 +和Zn2 +的酸度常数和稳定性常数实测值(I = 0.16 M NaCl,25摄氏度)。三种糖二胺各自的两个酸度常数相差10(1.65)至10(3.09),表明从HL +物种中去除质子比从完全质子化的H2L2 +质子去质子更困难。统计和极性效应,以及分子内氢键的形成,可能会导致HL +物种的稳定性增加。估计了氢键的强度及其形成的程度(百分比)。糖环对分子内氢键的形成只有很小的影响。对于不同的金属离子-配体系统,溶液中的主要种类非常不同。在Cu2 + -1-beta-D-Glc-pn系统中,占主导地位的物种始终是pH范围为4至10的CuL2 +和CuL22 +,其中总配体浓度大于总金属离子浓度。对于Ni2 +,在相同条件下NiL32 +也很重要。然而,对于Zn2 +,水解物种ZnL2(OH)(+)和ZnL2(OH)(2)在高pH区域占主导地位。计算过程中包括了系统中所有可能的物质,并确定了相应的稳定性常数。在某些情况下,金属离子本身的水解非常重要,并且所有可能的水解物种都包括在拟合计算中。稳定性常数对数K与pK的关系曲线得出了1,3-二胺或1,2-二胺配体的直线参考线,反映了金属离子配位中糖氧原子的完全不存在。金属离子和二胺残基之间的键合仅取决于配体的碱性。 [参考:37]

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