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甘氨酸的气相锂阳离子亲和力。

Gas-phase lithium cation affinity of glycine.

作者信息

Bourcier Sophie, Chiaa Ru Xuan, Mimbong Rosa Ngo Biboum, Bouchoux Guy

机构信息

Laboratoire de Chimie Moléculaire. Ecole Polytechnique. UMR 9168 CNRS 91128 Palaiseau, France.

N anyang Technological University. 21 Nanyang Link. 637371 Singapore.

出版信息

Eur J Mass Spectrom (Chichester). 2015;21(3):149-59. doi: 10.1255/ejms.1299.

Abstract

The gas-phase lithium cation binding thermochemistry of glycine has been determined theoretically by quantum chemical calculations at the G4 level and experimentally by the extended kinetic method using electrospray ionization quadrupole time-of-flight tandem mass spectrometry. The lithium cation affinity of glycine, ∆(Li)H°(298)(GLY), i.e. the∆(Li)H°(298) of the reaction GlyLi(+)→ Gly + Li(+)) given by the G4 method is equal to 241.4 kJ.mol(-1) if only the most stable conformer of glycine is considered or to 242.3 kJ.mol(-1) if the 298K equilibrium mixture of neutral conformers is included in the calculation. The ∆(Li)H°(298)(GLY) deduced from the extended kinetic method is obviously dependent on the choice of the Li(+) affinity scale, thus∆(Li)H°(298)(GLY) is equal to 228.7±0.9(2.0) kJ.mol(- 1) if anchored to the recently re-evaluated lithium cation affinity scale but shifted to 235.4±1.0 kJ.mol(-1) if G4 computed lithium cation affinities of the reference molecules is used. This difference of 6.3 kJ.mol(-1) may originate from a compression of the experimental lithium affinity scale in the high ∆(Li)H°(298) region. The entropy change associated with the reaction GlyLi(+)→Gly + Li(+) reveals a gain of approximately 15 J.mol(-) 1.K(-1) with respect to monodentate Li(+) acceptors. The origin of this excess entropy is attributed to the bidentate interaction between the Li(+) cation and both the carbonyl oxygen and the nitrogen atoms of glycine. The computed G4 Gibbs free energy,∆(Li)G°(298)(GLY) is equal to 205.3 kJ.mol(-1), a similar result, 201.0±3.4 kJ.mol(-1), is obtained from the experiment if the∆(Li)G°(298) of the reference molecules is anchored on the G4 results.

摘要

通过G4水平的量子化学计算以及使用电喷雾电离四极杆飞行时间串联质谱的扩展动力学方法,从理论和实验两方面确定了甘氨酸的气相锂阳离子结合热化学性质。甘氨酸的锂阳离子亲和能∆(Li)H°(298)(GLY),即反应GlyLi(+)→Gly + Li(+)的∆(Li)H°(298),若仅考虑甘氨酸最稳定的构象异构体,由G4方法得出的值为241.4 kJ·mol⁻¹;若计算中包含298K时中性构象异构体的平衡混合物,则该值为242.3 kJ·mol⁻¹。从扩展动力学方法推导得出的∆(Li)H°(298)(GLY)明显取决于Li⁺亲和能标度的选择,因此,若以最近重新评估的锂阳离子亲和能标度为基准,∆(Li)H°(298)(GLY)等于22‌8.7±0.9(2.0) kJ·mol⁻¹;但若使用G4计算的参考分子的锂阳离子亲和能,则该值变为235.4±1.0 kJ·mol⁻¹。这6.3 kJ·mol⁻¹的差异可能源于高∆(Li)H°(298)区域实验锂亲和能标度的压缩。与反应GlyLi(+)→Gly + Li(+)相关的熵变显示,相对于单齿Li⁺受体,熵增加了约15 J·mol⁻¹·K⁻¹。这种额外熵的来源归因于Li⁺阳离子与甘氨酸的羰基氧和氮原子之间的双齿相互作用。计算得出的G4吉布斯自由能∆(Li)G°(298)(GLY)等于205.3 kJ·mol⁻¹;若参考分子的∆(Li)G°(298)以G4结果为基准,则实验得出的类似结果为201.0±3.4 kJ·mol⁻¹。

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