首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Structure and dynamics of binary and ternary lanthanide(iii) and actinide(iii) tris[4,4,4-trifluoro-1-(2-thienyl)-1,3-butanedione] (TTA) - Tributylphosphate (TBP) complexes. Part 3, the structure, thermodynamics and reaction mechanisms of 8- and 9-coordinated binary and ternary Y-TTA-TBP complexes studied by quantum chemical methods
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Structure and dynamics of binary and ternary lanthanide(iii) and actinide(iii) tris[4,4,4-trifluoro-1-(2-thienyl)-1,3-butanedione] (TTA) - Tributylphosphate (TBP) complexes. Part 3, the structure, thermodynamics and reaction mechanisms of 8- and 9-coordinated binary and ternary Y-TTA-TBP complexes studied by quantum chemical methods

机译:三[4,4,4-三氟-1-(2-噻吩基)-1,3-丁二酮](TTA)-磷酸三丁酯(TBP)配合物的二元和三元镧系元素(iii)和act系元素(iii)的结构和动力学。第三部分,通过量子化学方法研究8和9配位的二元和三元Y-TTA-TBP配合物的结构,热力学和反应机理

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Possible mechanisms for intermolecular exchange between coordinated and solvent water in the complexes Y(TTA)_3(OH_2)_2 and Y(TTA)_3(TBP)(OH_2) and intermolecular exchange between free and coordinated HTTA in Y(TTA)3(OH2)(HTTA) and Y(TTA)3(TBP)(HTTA) have been investigated using ab initio quantum chemical methods. The calculations comprise both structures and energies of isomers, intermediates and transition states. Based on these data and experimental NMR data (Part 2) we have suggested intimate reaction mechanisms for water exchange, intramolecular exchange between structure isomers and intermolecular exchange between free HTTA and coordinated TTA. A large number of isomers are possible for the complexes investigated, but only some of them have been investigated, in all of them the most stable geometry is a more or less distorted square anti-prism or bicapped trigonal prism; the energy differences between the various isomers are in general small, less than 10 kJ mol ~(-1). 9-coordinated intermediates play an important role in all reactions. Y(TTA)_3(OH_2)_3 has three non-equivalent water ligands that can participate in ligand exchange reactions. The fastest of these exchanging sites has a QM activation energy of 18.1 kJ mol~(-1), in good agreement with the experimental activation enthalpy of 19.6 kJ mol~(-1). The mechanism for the intramolecular exchange between structure isomers in Y(TTA)_3(OH_2)_2 involves the opening of a TTA-ring as the rate determining step as suggested by the good agreement between the QM activation energy and the experimental activation enthalpy 47.8 and 58.3 J mol~(-1), respectively. The mechanism for the intermolecular exchange between free and coordinated HTTA in Y(TTA) _3(HTTA) and Y(TTA)_3(TBP)(HTTA) involves the opening of the intramolecular hydrogen bond in coordinated HTTA followed by proton transfer to coordinated TTA. This mechanism is supported by the good agreement between experimental activation enthalpies (within parenthesis) and calculated activation energies 68.7 (71.8) and 35.3 (38.8) kJ mol-1. The main reason for the difference between the two systems is the much lower energy required to open the intramolecular hydrogen bond in the latter. The accuracy of the QM methods and chemical models used is discussed.
机译:Y(TTA)_3(OH_2)_2和Y(TTA)_3(TBP)(OH_2)配合物中配位和溶剂水之间的分子间交换以及Y(TTA)3(OH2)中游离和配位HTTA之间的分子间交换的可能机制(HTTA)和Y(TTA)3(TBP)(HTTA)已使用从头算量子化学方法进行了研究。计算包括异构体,中间体和过渡态的结构和能量。基于这些数据和实验NMR数据(第2部分),我们提出了水交换,结构异构体之间的分子内交换以及游离HTTA和配位TTA之间的分子间交换的密切反应机理。对于所研究的配合物,可能存在大量异构体,但仅对其中一些进行了研究,在所有这些异构体中,最稳定的几何形状是或多或少扭曲的方形反棱镜或三棱柱三角棱镜。通常,各种异构体之间的能量差很小,小于10 kJ mol〜(-1)。 9位配位的中间体在所有反应中均起重要作用。 Y(TTA)_3(OH_2)_3具有三个可以参与配体交换反应的非等价水配体。这些交换位点中最快的交换点的QM活化能为18.1 kJ mol〜(-1),与实验活化焓为19.6 kJ mol〜(-1)吻合良好。 Y(TTA)_3(OH_2)_2中结构异构体之间的分子内交换机制涉及到打开TTA环作为速率确定步骤,这是QM活化能与实验活化焓47.8和58.3 J mol〜(-1)。 Y(TTA)_3(HTTA)和Y(TTA)_3(TBP)(HTTA)中的游离和配位HTTA之间的分子间交换机制涉及在配位HTTA中打开分子内氢键,然后将质子转移至配位TTA 。实验活化焓(在圆括号内)与计算出的活化能68.7(71.8)和35.3(38.8)kJ mol-1之间的良好一致性为该机理提供了支持。两种系统之间差异的主要原因是打开后者的分子内氢键所需的能量低得多。讨论了质量管理方法和所用化学模型的准确性。

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