Ali Akbar, Din Zia Ud, Ibrahim Muhammad, Ashfaq Muhammad, Muhammad Shabbir, Gull Dania, Tahir Muhammad Nawaz, Rodrigues-Filho Edson, Al-Sehemi Abdullah G, Suleman Muhammad
Department of Chemistry, Government College University Faisalabad, 38000-Faisalabad Pakistan.
LaBioMMi, Departamento de Química, Universidade Federal de São Carlos CP 676, São Carlos SP 13.565-905 Brazil.
RSC Adv. 2023 Feb 2;13(7):4476-4494. doi: 10.1039/d2ra07681k. eCollection 2023 Jan 31.
In the present study crystalline unsymmetrical diarylidene ketone derivatives BNTP and BDBC have been prepared by two sequential acid catalyzed aldol condensation reactions in a one pot manner. The crystal structures of both compounds were confirmed by single crystal X-ray diffraction analysis which revealed the presence of H-bonding interactions of type C-H⋯O, along with weak C-H⋯π and weak π⋯π stacking interactions that are involved in the crystal stabilization of both organic compounds. Hirshfeld surface analysis is carried out for the broad investigation of the intermolecular interactions in both compounds. The quantum chemical investigation was performed on the optimized molecular geometries of BNTP and BDBC to calculate optical and nonlinear optical (NLO) properties. The density functional theory (DFT) study showed that the third-order NLO polarizabilities of compounds BNTP and BDBC are found to be 226.45 × 10 esu and 238.72 × 10 esu, respectively, which indicates noticeable good NLO response properties. Additionally, the BNTP and BDBC molecules also showed the HOMO-LUMO orbital gaps of 5.96 eV and 6.06 eV, respectively. Furthermore, the computation of UV-visible spectra of the titled compounds indicated a limited and/or no absorption above the 400 nm region, directing a good transparency and NLO property trade-off for both synthesized compounds that may play a significant contribution in the future for optoelectronic technologies.
在本研究中,通过一锅法中两个连续的酸催化羟醛缩合反应制备了结晶性不对称二芳叉基酮衍生物BNTP和BDBC。通过单晶X射线衍射分析确定了两种化合物的晶体结构,结果表明存在C-H⋯O型氢键相互作用,以及参与两种有机化合物晶体稳定化的弱C-H⋯π和弱π⋯π堆积相互作用。对两种化合物的分子间相互作用进行了广泛研究的Hirshfeld表面分析。对BNTP和BDBC的优化分子几何结构进行了量子化学研究,以计算光学和非线性光学(NLO)性质。密度泛函理论(DFT)研究表明,化合物BNTP和BDBC的三阶NLO极化率分别为226.45×10 esu和238.72×10 esu,这表明它们具有明显良好的NLO响应特性。此外,BNTP和BDBC分子的HOMO-LUMO轨道间隙分别为5.96 eV和6.06 eV。此外,对标题化合物的紫外可见光谱计算表明,在400 nm以上区域吸收有限和/或无吸收,这表明两种合成化合物具有良好的透明度和NLO性能权衡,这可能在未来的光电子技术中发挥重要作用。