Department of Chemistry, University of Science and Technology Beijing, Beijing 100083, China.
Phys Chem Chem Phys. 2011 Aug 7;13(29):13277-86. doi: 10.1039/c1cp20056a. Epub 2011 Jun 27.
The conformational effects on the frontier molecular orbital energy and stability for reduced, neutral, and oxidized bis(phthalocyaninato) lanthanum double-deckers have been revealed on the basis of density functional theory calculations. Calculation results indicate that the frontier orbital coupling degree changes along with the molecular conformation of the double-decker compound, first decreasing along with the increase of rotation angle β from 0 to 20° and then increasing along with the increase of rotation angle β from 20 to 45°. In addition, the stability for the three forms of double-decker changes in the same order, but first increasing and then decreasing along with the change of the rotation angle β in the range of 0 to 45° with a rotation energy barrier of (31.3 ± 3.1) kJ mol(-1) at 20°. This reveals that the rotation of the two phthalocyanine rings for the reduced, neutral, and oxidized bis(phthalocyaninato) lanthanum double-deckers are able to occur at room temperature. Nevertheless, the superior coordination reaction activity of the neutral bis(phthalocyaninato) lanthanum double-decker complex over their reduced form in forming sandwich-type tris(phthalocyaninato) lanthanum triple-decker compounds has also been clearly clarified on the basis of comparative calculations on the Fukui function of [La(Pc)(2)] and La(Pc)(2) using the DFT method. Fukui function analysis reveals the reaction center of the 18-electron-π-conjugated core in the bis(phthalocyaninato) lanthanum double-decker molecule against both electrophilic and radical attack. Nevertheless, the larger global chemical softness (S) for the neutral [La(Pc)(2)] than the reduced form La(Pc)(2) indicates the higher reaction activity of the former form over the latter one. This explains well the experimental findings that only the neutral instead of the reduced form of bis(tetrapyrrole) rare earth double-decker complexes, containing at least one phthalocyanine ligand, could be employed as starting materials towards the preparation of tris(tetrapyrrole) rare earth triple-decker complexes by a solution process.
基于密度泛函理论计算,揭示了还原态、中性和氧化态双酞菁镧双层配合物的前线分子轨道能和稳定性的构象效应。计算结果表明,前线轨道耦合程度随双层配合物分子构象的变化而变化,首先随双环化合物的旋转角β从 0 增加到 20°而减小,然后随β从 20°增加到 45°而增加。此外,三种形式的双层稳定性按相同顺序变化,但在 0 到 45°范围内随β的变化而先增加后减小,在 20°时旋转能垒为(31.3±3.1)kJ/mol。这表明还原态、中性和氧化态双酞菁镧双层配合物的两个酞菁环可以在室温下旋转。然而,基于对使用 DFT 方法对[La(Pc)(2)]和[La(Pc)(2)]-的福井函数进行比较计算,也清楚地阐明了中性双(酞菁基)镧双层配合物在形成夹心型三(酞菁基)镧三环配合物方面比其还原形式具有优越的配位反应活性。福井函数分析揭示了双(酞菁基)镧双层分子中 18 电子-π 共轭核的反应中心对亲电和自由基的攻击。然而,中性[La(Pc)(2)]的全局化学软度(S)大于还原形式[La(Pc)(2)]-,表明前者的反应活性高于后者。这很好地解释了实验发现,只有中性而不是还原态的双(四吡咯)稀土双层配合物,包含至少一个酞菁配体,可作为通过溶液过程制备三(四吡咯)稀土三环配合物的起始材料。