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Intramolecular proton transfer induced by divalent alkali earth metal cation in the gas state

机译:二价碱土金属阳离子在气态下引起的分子内质子转移

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Interactions between divalent alkali earth metal (DAEM) ions M (M Be, Mg, Ca, Sr, l3a) and the second stable glycine conformer in the gas phase, which can transfer into the ground-state glycine-M2+ (except the glycine-Be2+) among each corresponding isomers when these divalent metal ions are bound, are studied at the hybrid three-parameter B3LYP level with three different basis sets. Proton transfers from the hydroxyl to the amino nitrogen of the glycine without energy barriers have been first observed in the gas phase in these glycine-M2+ systems. The interaction between the glycine and these DAEM ions except beryllium and magnesium ion only create an amino hydrogen pointing to the original hydroxyl due to their weaker interaction relative to those divalent transition metal (DTM) ion-bound glycine derivatives, being obviously different from that between the glycine and DTM ions, in which two an-Lino hydrogens point to the original hydroxyl oxygen when these metal-chelated glycine derivatives are produced. The interaction energy between the glycine and divalent magnesium would be the boundary of one or two amino hydrogens pointing to the hydrogyl oxygen, i.e., the -170.3 kcal/mol of binding energy is a critical point. Similar intramolecular proton transfer has also been predicted for those DTM ion-chelated glycine systems; however, that in the gas state has not been observed in the monovalent metal ion-coordinated glycine systems. The binding energy between some monovalent TM ion and the glycine is similar to that of the glycine-Ba2+, which has the lowest binding strength among these DAEM-ion chelated glycine complexes. The difference among them only lies in the larger electrostatic and polarized effects in the latter, which favor the stability of the zwitterionic glycine form in the gas phase. According to these observations, we predict that the zwitterionic glycine would exist in the field of two positive charges in the gas phase. (C) 2003 Wiley Periodicals, Inc. [References: 36]
机译:二价碱土金属(DAEM)离子M(M Be,Mg,Ca,Sr,l3a)与气相中第二个稳定的甘氨酸构象异构体之间的相互作用,可以转化为基态甘氨酸M2 +(甘氨酸除外)当这些二价金属离子键合时,在每个对应的异构体中的Be2 +)在具有三个不同基集的混合三参数B3LYP水平上进行研究。在这些甘氨酸-M2 +系统的气相中,首先观察到质子从羟基转移到甘氨酸的氨基氮而没有能垒。甘氨酸与这些DAEM离子之间的相互作用(铍和镁离子除外)仅会产生一个指向原始羟基的氨基氢,这是由于它们相对于那些与二价过渡金属(DTM)离子结合的甘氨酸衍生物的相互作用较弱,这与甘氨酸和DTM离子,其中生成这些金属螯合的甘氨酸衍生物时,两个an-Lino氢指向原始的羟基氧。甘氨酸和二价镁之间的相互作用能将是一个或两个指向氢羟基氧的氨基氢的边界,即-170.3 kcal / mol的结合能是一个关键点。对于那些DTM离子螯合的甘氨酸系统,也已经预测了类似的分子内质子转移。但是,在单价金属离子配位的甘氨酸体系中未观察到气态。某些单价TM离子与甘氨酸之间的结合能类似于甘氨酸-Ba 2+,在这些DAEM离子螯合的甘氨酸络合物中具有最低的结合强度。它们之间的区别仅在于后者中较大的静电和极化作用,这有利于两性离子甘氨酸形式在气相中的稳定性。根据这些观察,我们预测两性离子甘氨酸将存在于气相中的两个正电荷场中。 (C)2003 Wiley Periodicals,Inc. [参考:36]

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