在水溶液中对Pt-Pt间接自旋-自旋合的动态和相对论效应,通过ab initio分子动力学和两个与四个成分密度的功能性NMR计算来研究
Patrick R Batista1, Lucas C Ducati1, Jochen Autschbach2
1Department of Fundamental Chemistry, Institute of Chemistry, University of São Paulo, Av. Prof. Lineu Prestes, 748, 05508-000 São Paulo, SP, Brazil.
计算-195核磁共振 (NMR) 参数是复杂的. 这项研究使用先进的量子化学和分子动力学来揭示溶剂和形状如何影响双核复合体中的- (Pt-Pt) 合.
科学领域:
- 量子化学 是一个量子化学.
- 计算化学的计算化学
- 核磁共振光谱学 核磁共振光谱学
背景情况:
- 由于相对论效应,溶剂动力学和电子相关性,在溶液中计算195Pt的NMR参数具有挑战性.
- 需要先进的理论方法来准确地建模这些复杂的系统.
研究的目的:
- 为了研究溶剂对构造变化和Pt-Pt合在桥接双核 (III) 复合体中的溶剂效应.
- 评估相对论量子化学方法与分子动态相结合的性能,以预测NMR参数.
主要方法:
- 卡尔-帕里内洛分子动力学 (CPMD) 模拟.
- 使用两组件 (2c-ZKS) 和四组件 (4c-DKS) 哈密尔顿的相对论量子化学计算.
- 研究桥梁Pt(III) 双核复合体与不同的轴联体 (H2O,Cl-, Br-) 和桥梁联体 (α-pyrrolidonate,pivalamidate) 的研究.
主要成果:
- Pt-Pt合强烈依赖于形态动力学,受转变影响和桥接连体角度的影响.
- 振动和明确的溶解降低了二元复合体中的 Pt-Pt 合.
- 隐性和散量溶解增加了在二和水复合体中的 Pt-Pt 合.
- 2c-ZKS哈密尔顿式为Pt-Pt合提供了与4c-DKS可比的结果.
结论:
- 相对论计算与CPMD相结合,可以准确地捕获Pt-Pt合的溶剂和动态效应.
- 选择溶解模型显著影响预测的Pt-Pt合常量.
- 对于这些系统,2c-ZKS 哈密尔顿式是 4c-DKS 的计算效率高的替代方案.
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