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首页> 外文期刊>Computational & theoretical chemistry >Density functional dependence of molecular geometries in lanthanide(III) complexes relevant to bioanalytical and biomedical applications
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Density functional dependence of molecular geometries in lanthanide(III) complexes relevant to bioanalytical and biomedical applications

机译:与生物分析和生物医学应用相关的镧系元素(III)配合物中分子几何结构的密度函数依赖性

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摘要

A set of 15 lanthanide-containing model systems was used to evaluate the performance of 15 commonly available density functionals (SVWN, SPL, BLYP, G96LYP, mPWLYP, B3LYP, BH&HLYP, B3PW91, BB95, mPWB95, TPSS, TPSSh, M06, CAM-B3LYP and wB97XD) in geometry determination, benchmarked against MP2 calculations. The best agreement between DFT optimized geometries and those obtained from MP2 calculations is provided by meta-GGA and hybrid meta-GGA functionals. The use of hybrid-GGA functionals such as BH&HLYP and B3PW91 also provide reasonably good results, while B3LYP provides an important overestimation of the metal-ligand bonds. The performance of different basis sets to describe the ligand(s) atoms, as well as the use of large-core (LC) RECPs and small-core (SC) RECPs, has been also assessed. Our calculations show that SCRECP calculations provide somewhat shorter Gd III-donor distances than the LCRECP approach, the average contraction of bond distances for the systems investigated amounting to 0.033?. However, geometry optimizations with the SCRECP (in combination with the mPWB95 functional and the 6-31G(d) basis set for the ligand atoms) take about 15 times longer than the LC counterparts, and about four times longer than MP2/LCRECP/6-31G(d) calculations. The 6-31G(d), 6-311G(d), 6-311G(d,p) or cc-pVDZ basis sets, in combination with LCRECPs, appear to offer an adequate balance between accuracy and computational cost for the description of molecular geometries of Ln ~(III) complexes. Electronic energies calculated with the the cc-pVxZ family (x=D-6) indicate a relative fast convergence to the complete basis set (CBS) limit with basis set size. The inclusion of bulk solvent effects (IEFPCM) was shown to provoke an important impact on the calculated geometries, particularly on the metal-nitrogen distances. Calculations performed on lanthanide complexes relevant for practical applications confirmed the important effect of the solvent on the calculated geometries.
机译:使用一组15个含镧系元素的模型系统来评估15个常用密度函数(SVWN,SPL,BLYP,G96LYP,mPWLYP,B3LYP,BH&HLYP,B3PW91,BB95,mPWB95,TPSS,TPSSh,M06,CAM- B3LYP和wB97XD)在几何确定中,以MP2计算为基准。 meta-GGA和混合meta-GGA功能提供了DFT优化几何与从MP2计算获得的几何之间的最佳一致性。使用混合GGA官能团(例如BH&HLYP和B3PW91)也可以提供相当不错的结果,而B3LYP提供了对金属-配体键的重要高估。还评估了用于描述配体原子的不同基集的性能,以及使用大核(LC)RECP和小核(SC)RECP的性能。我们的计算表明,SCRECP计算提供的Gd III供体距离比LCRECP方法短一些,所研究系统的平均键距收缩量为0.033?。但是,使用SCRECP(与mPWB95功能和配体原子的6-31G(d)基础集组合)进行几何优化所需的时间比LC同类产品长约15倍,比MP2 / LCRECP / 6长约4倍。 -31G(d)计算。 6-31G(d),6-311G(d),6-311G(d,p)或cc-pVDZ基集与LCRECP结合使用时,似乎可以在精度和计算成本之间提供足够的平衡,以描述以下内容: Ln〜(III)配合物的分子几何结构。使用cc-pVxZ系列(x = D-6)计算出的电能表明,相对快速收敛到具有基本集大小的完整基本集(CBS)限制。结果表明,包括整体溶剂效应(IEFPCM)会对计算的几何形状,特别是金属-氮距离产生重要影响。对与实际应用相关的镧系元素络合物进行的计算证实了溶剂对计算出的几何形状的重要影响。

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