Prabusankar Ganesan, Muthukumaran Nirmala, Vaddamanu Moulali, Raju Gembali, Velappan Kavitha, Sathyanarayana Arruri, Masaya Yamane, Sugiyama Shohei, Hisano Kyohei, Tsutsumi Osamu
Department of Chemistry, Indian Institute of Technology Hyderabad India-502285
Department of Chemistry, GITAM University Hyderabad India-502329.
RSC Adv. 2019 Mar 6;9(13):7543-7550. doi: 10.1039/c9ra00281b. eCollection 2019 Mar 1.
Herein, the photophysical properties of an acridine derivative of a bis-N-heterocyclic carbene silver complex were investigated. The HOMO and LUMO energy differences between 9-[(-methyl imidazol-2-ylidene)]acridine and 4,5-bis[(-methyl-imidazol-2-ylidene)methyl]acridine were theoretically compared. Based on the calculation, the 4,5-bis N-heterocyclic carbene-tethered acridine type of ligand was found to be a potential source for tuning the fluorescent nature of the resultant metal derivatives. Thus, a 4,5-bis N-heterocyclic carbene (NHC)-tethered acridine silver(i) salt was synthesized, and its photophysical properties were investigated. The 4,5-bis[(-isopropylimidazol-2-ylidene)methyl]acridine silver(i) hexafluorophosphate complex was obtained from the reaction between [4,5-bis{(-isopropylimidazolium)methyl}acridine] hexafluorophosphate and AgO in very good yield; this molecule was characterized by elemental analysis and FTIR, multinuclear (H and C) NMR, UV-Vis, and fluorescence spectroscopic techniques. The molecular structure has been confirmed by single-crystal X-ray diffraction analysis, which has revealed that the complex is a homoleptic mononuclear silver(i) cationic solid. The charge of the Ag(i)-NHC cation is balanced by the hexafluorophosphate anion. The cationic moieties are closely packed in the chair and inverted chair forms where silver(i) possesses a quasi-linear geometry. Moreover, the silver complex provided blue emission from all the three excitations with good fluorescence quantum yield. The fluorescence lifetime of the silver(i) complex has been determined using the time-correlated single photon counting technique. Interestingly, the fluorescence decay pattern and the fluorescence lifetimes of the silver complex are largely different from those of the parent ligand acridine imidazolium salt. Moreover, the theoretical predictions have been found to be in good agreement with the experimental results.
在此,对双-N-杂环卡宾银配合物的吖啶衍生物的光物理性质进行了研究。理论上比较了9-[(-甲基咪唑-2-亚基)]吖啶与4,5-双[(-甲基-咪唑-2-亚基)甲基]吖啶之间的最高占据分子轨道(HOMO)和最低未占据分子轨道(LUMO)能量差。基于计算,发现4,5-双N-杂环卡宾连接的吖啶型配体是调节所得金属衍生物荧光性质的潜在来源。因此,合成了一种4,5-双N-杂环卡宾(NHC)连接的吖啶银(I)盐,并对其光物理性质进行了研究。4,5-双[(-异丙基咪唑-2-亚基)甲基]吖啶银(I)六氟磷酸盐配合物由[4,5-双{(-异丙基咪唑鎓)甲基}吖啶]六氟磷酸盐与AgO反应制得,产率很高;该分子通过元素分析、傅里叶变换红外光谱(FTIR)、多核(H和C)核磁共振、紫外可见光谱和荧光光谱技术进行了表征。分子结构已通过单晶X射线衍射分析得到证实,结果表明该配合物是一种均配单核银(I)阳离子固体。Ag(I)-NHC阳离子的电荷由六氟磷酸根阴离子平衡。阳离子部分以椅式和反椅式紧密堆积,其中银(I)具有准线性几何结构。此外,该银配合物在所有三种激发下均发出蓝色荧光,荧光量子产率良好。使用时间相关单光子计数技术测定了银(I)配合物的荧光寿命。有趣的是,银配合物的荧光衰减模式和荧光寿命与母体配体吖啶咪唑鎓盐有很大不同。此外,理论预测与实验结果吻合良好。