Koca M, Arici C, Muglu H, Vurdu C D, Kandemirli F, Zalaoglu Y, Yildirim G
Adiyaman University, Department of Chemistry, Faculty of Arts and Science, Adıyaman 02040, Turkey.
Hacettepe University, Department of Engineering Physics, Ankara 06800, Turkey.
Spectrochim Acta A Mol Biomol Spectrosc. 2015 Feb 25;137:899-912. doi: 10.1016/j.saa.2014.08.119. Epub 2014 Sep 17.
This comprehensive study reports the synthesis of the title compound, 1-(3-Mesityl-3-methylcyclobutyl)-2-(naphthalene-1-yloxy)ethanone (C26H28O2), and identification of the molecule by means of the standard experimental methods such as single-crystal X-ray diffraction, ultra violet-visible (UV-vis) spectra, Fourier transform infrared (FTIR) spectra, (13)C and (1)H NMR chemical shifts and quantum chemical calculations using density functional theory (B3LYP) method for the first time. The experimental results observed display that the synthesis of the C26H28O2 compound is perfectly conducted without any impurities. Additionally, the little deviations are noticed on the bond lengths and bond angles, confirming that the strong intra-molecular charge transfers appear in the due to the presence of the electron engagements and conjugative effects (bond weakening). Besides, the intermolecular C-H⋯O distance presents the interaction between the methylcyclobutyl C-H group and oxygen atom in the ethanone group. At the same time, the absorption wavelength (λmax) appears at 292 nm and interval 297-269 nm in the solvent of chloroform and THF as a consequence of the presence of effective π-π(∗) conjugated segments in the molecule studied. Besides, optical band gap energy of 3.22/3.25 eV (chloroform/THF), verifies the existence of the strong electronic donating groups in the structure. As for the quantum chemical computations, the determination of the optimized molecular structures, vibrational frequencies including infrared intensities, vibrational wavenumbers, thermodynamic properties, atomic charges, electronic transitions, dipole moment (charge distribution), optical band gap energy, (1)H and (13)C NMR chemical shifts are conducted using density functional theory/Becke-3-Lee-Yang-Parr (DFT/B3LYP) method with the standard 6-311++G(2d,2p) level of theory. The results obtained show that the strong intra-molecular charge transfer (ICT) appears between the donor and acceptor in the title compound due to the existence of the strong electronic donating groups and effective π-π(∗) conjugated segments with high electronic donor ability for the electrophilic attack (intermolecular interactions). Additionally, the presence of the non-uniform charge distributions (polar behavior) on the various atoms makes the title compound be useful to bond metallically.
本全面研究报告了标题化合物1-(3-均三甲苯基-3-甲基环丁基)-2-(萘-1-基氧基)乙酮(C₂₆H₂₈O₂)的合成,并首次通过标准实验方法对该分子进行了鉴定,这些方法包括单晶X射线衍射、紫外可见(UV-vis)光谱、傅里叶变换红外(FTIR)光谱、¹³C和¹H NMR化学位移以及使用密度泛函理论(B3LYP)方法进行的量子化学计算。观察到的实验结果表明,C₂₆H₂₈O₂化合物的合成进行得非常完美,没有任何杂质。此外,在键长和键角上发现了微小偏差,这证实了由于电子键合和共轭效应(键弱化)的存在,分子内出现了强烈的电荷转移。此外,分子间C-H⋯O距离显示了甲基环丁基C-H基团与乙酮基团中氧原子之间的相互作用。同时,由于所研究分子中存在有效的π-π(∗)共轭片段,在氯仿和四氢呋喃溶剂中,吸收波长(λmax)出现在292 nm以及297 - 269 nm区间。此外,3.22/3.25 eV(氯仿/四氢呋喃)的光学带隙能量证实了结构中存在强给电子基团。至于量子化学计算,使用密度泛函理论/Becke-3-Lee-Yang-Parr(DFT/B3LYP)方法,在标准的6-311++G(2d,2p)理论水平下,对优化的分子结构、振动频率(包括红外强度、振动波数)、热力学性质、原子电荷、电子跃迁、偶极矩(电荷分布)、光学带隙能量、¹H和¹³C NMR化学位移进行了测定。所得结果表明,由于存在强给电子基团和具有高亲电攻击电子给体能力的有效π-π(∗)共轭片段(分子间相互作用),标题化合物中供体和受体之间出现了强烈的分子内电荷转移(ICT)。此外,不同原子上存在不均匀的电荷分布(极性行为)使得标题化合物可用于金属键合。