Kareev Ivan E, Quiñones Gustavo Santiso, Kuvychko Igor V, Khavrel Pavel A, Ioffe Ilya N, Goldt Ilya V, Lebedkin Sergey F, Seppelt Konrad, Strauss Steven H, Boltalina Olga V
Institute of Problems of Chemical Physics, Russian Academy of Sciences, Chernogolovka 142432 Russia.
J Am Chem Soc. 2005 Aug 17;127(32):11497-504. doi: 10.1021/ja051954y.
Milligram amounts of the new compounds 1,9- and 1,7-C60F(CF3) (ca. 85:15 mixture of isomers) and C60F3(CF3) were isolated from a high-temperature C60/K2PtF6 reaction mixture and purified to 98 mol % compositional purity by two-dimensional high-performance liquid chromatography using Buckyprep and Buckyclutcher columns. The previously observed compounds C60F5(CF3) and C60F7(CF3) were also purified to 90+ mol % for the first time. Variable-temperature 19F NMR spectra of the mixture of C60F(CF3) isomers and the previously reported mixture of C(s)- and C1-C60F17(CF3) isomers demonstrate for the first time that fullerene(F)n(CF3)m derivatives with adjacent F and CF3 substituents exhibit slow-exchange limit hindered CF3 rotation spectra at -40 +/- 10 degrees C. The experimental and density functional theory (DFT) predicted deltaH++ values for CF3 rotation in 1,9-C60F(CF3) are 46.8(7) and 46 kJ mol(-1), respectively. The DFT-predicted deltaH++ values for 1,7-C60F(CF3), C(s)-C60F17(CF3), and C1-C60F17(CF3) are 20, 44, and 54 kJ mol(-1), respectively. The (> or = 4)J(FF) values from the slow-exchange-limit 19F spectra, which vary from ca. 0 to 48(1) Hz, show that the dominant nuclear spin-spin coupling mechanism is through-space coupling (i.e., direct overlap of fluorine atom lone-pair orbitals) rather than coupling through the sigma-bond framework. The 2J(FF) values within the CF3 groups vary from 107(1) to 126(1) Hz. Collectively, the NMR data provide an unambiguous set of (> or = 4)J(FF) values for three different compounds that can be correlated with DFT-predicted or X-ray diffraction derived distances and angles and an unambiguous set of 2J(FF) values that can serve as an internal standard for all future J(FF) calculations.
从高温C60/K2PtF6反应混合物中分离出毫克量的新化合物1,9-和1,7-C60F(CF3)(异构体的约85:15混合物)以及C60F3(CF3),并使用Buckyprep和Buckyclutcher柱通过二维高效液相色谱法将其纯化至组成纯度为98 mol%。之前观察到的化合物C60F5(CF3)和C60F7(CF3)也首次被纯化至90 + mol%。C60F(CF3)异构体混合物以及之前报道的C(s)-和C1-C60F17(CF3)异构体混合物的变温19F NMR光谱首次表明,具有相邻F和CF3取代基的富勒烯(F)n(CF3)m衍生物在-40±10℃时呈现慢交换极限受阻CF3旋转光谱。1,9-C60F(CF3)中CF3旋转的实验值和密度泛函理论(DFT)预测的ΔH++值分别为46.8(7)和46 kJ mol(-1)。1,7-C60F(CF3)、C(s)-C60F17(CF3)和C1-C60F17(CF3)的DFT预测ΔH++值分别为20、44和54 kJ mol(-1)。慢交换极限19F光谱中的(≥4)J(FF)值在约0至48(1)Hz之间变化,表明主要的核自旋-自旋耦合机制是通过空间耦合(即氟原子孤对轨道的直接重叠)而非通过σ键框架耦合。CF3基团内的2J(FF)值在107(1)至126(1)Hz之间变化。总体而言,NMR数据为三种不同化合物提供了一组明确的(≥4)J(FF)值,这些值可与DFT预测的或X射线衍射得出的距离和角度相关联,还提供了一组明确的2J(FF)值,可作为未来所有J(FF)计算的内标。