首页> 外文期刊>Journal of the Brazilian Chemical Society >Sparkle/PM3 for the modeling of europium(III), gadolinium(III), and terbium(III) complexes
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Sparkle/PM3 for the modeling of europium(III), gadolinium(III), and terbium(III) complexes

机译:Sparkle / PM3,用于the(III),g(III)和ter(III)配合物的建模

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The Sparkle/PM3 model is extended to europium(III), gadolinium(III), and terbium(III) complexes. The validation procedure was carried out using only high quality crystallographic structures, for a total of ninety-six Eu(III) complexes, seventy Gd(III) complexes, and forty-two Tb(III) complexes. The Sparkle/PM3 unsigned mean error, for all interatomic distances between the trivalent lanthanide ion and the ligand atoms of the first sphere of coordination, is: 0.080 ? for Eu(III); 0.063 ? for Gd(III); and 0.070 ? for Tb(III). These figures are similar to the Sparkle/AM1 ones of 0.082 ?, 0.061 ?, and 0.068 ? respectively, indicating they are all comparable parameterizations. Moreover, their accuracy is similar to what can be obtained by present-day ab initio effective core potential full geometry optimization calculations on such lanthanide complexes. Finally, we report a preliminary attempt to show that Sparkle/PM3 geometry predictions are reliable. For one of the Eu(III) complexes, BAFZEO, we created hundreds of different input geometries by randomly varying the distances and angles of the ligands to the central Eu(III) ion, which were all subsequently fully optimized. A significant trend was unveiled, indicating that more accurate local minima geometries cluster at lower total energies, thus reinforcing the validity of sparkle model calculations.
机译:Sparkle / PM3模型扩展到euro(III),g(III)和ter(III)配合物。验证程序仅使用高质量的晶体结构进行,共计96种Eu(III)配合物,70种Gd(III)配合物和42种Tb(III)配合物。对于三价镧系元素离子与第一个配位球的配体原子之间的所有原子间距离,Sparkle / PM3无符号平均误差为:0.080?为Eu(III); 0.063吗?用于Gd(III);和0.070? Tb(III)。这些数字与Sparkle / AM1的0.082Ω,0.061Ω和0.068Ω相似。分别表示它们都是可比较的参数化。而且,它们的精确度类似于通过今天从头开始对此类镧系元素络合物进行有效的核能全几何优化计算所获得的精确度。最后,我们报告了初步尝试,以证明Sparkle / PM3几何预测是可靠的。对于其中一种Eu(III)配合物BAFZEO,我们通过随机改变配体到中心Eu(III)离子的距离和角度创建了数百种不同的输入几何形状,随后对它们进行了充分优化。揭示了一个显着趋势,表明更准确的局部最小几何形状在较低的总能量下聚集,从而增强了火花模型计算的有效性。

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