Anitha Thipanni, Mrinalini Madoori, Vani Damera, Prasanthkumar Seelam, Rajender Reddy Kallu, Giribabu Lingamallu
Catalysis & Fine Chemicals Division, CSIR-Indian Institute of Chemical Technology (IICT), Tarnaka, Hyderabad, Telangana, India.
Academy of Scientific and Innovation Research (AcSIR), Ghaziabad, New Delhi, India.
Photochem Photobiol. 2020 Nov;96(6):1182-1190. doi: 10.1111/php.13306. Epub 2020 Jul 28.
Herein, we report the versatile synthetic strategy and opto-electronic properties for the phosphorylation of BODIPY derivatives 5aa-5ak by substituting with an electron-donating/withdrawing group at the ortho position. Nevertheless, this new methodology relatively promotes the tolerance of the aldehyde moiety and the high yield for the synthesis of BODIPY o-OPhos derivatives. The photophysical studies suggest improved optical properties due to the inductive effect of various electron-donating/withdrawing groups. The UV-visible and the emission data suggest that BODIPY o-OPhos derivatives emphasize the property of the excited states with an increase in fluorescence intensity and high quantum yields due to the presence of bulky phospsho-triester at the meso- position which hinders the free rotation around the C-Ar bond and facilitates the development of OLEDs and various organophosphorus warfare agents. Electrochemical studies reveal 5ak depicts the ease of redox activity amongst the 5aa-5ak derivatives. The density functional theory indicates the highest occupied molecular orbital on the BODIPY moiety whereas the lowest unoccupied molecular orbital delocalized on BODIPY and the phospho-triester moieties. Thus, the unique development of the novel BODIPY derivatives with improved optical and redox properties pave the way for fluorescent probes and bioimaging techniques.
在此,我们报道了一种通用的合成策略以及通过在邻位取代供电子/吸电子基团来实现BODIPY衍生物5aa - 5ak磷酸化的光电性质。然而,这种新方法相对提高了醛基部分的耐受性以及合成BODIPY邻位磷酸化衍生物的高产率。光物理研究表明,由于各种供电子/吸电子基团的诱导效应,光学性质得到了改善。紫外可见光谱和发射数据表明,BODIPY邻位磷酸化衍生物由于在中位存在庞大的磷酸三酯,阻碍了围绕C - Ar键的自由旋转,从而增强了激发态的性质,表现为荧光强度增加和量子产率高,这有利于有机发光二极管(OLED)和各种有机磷战剂的开发。电化学研究表明,5ak在5aa - 5ak衍生物中表现出最容易发生氧化还原反应。密度泛函理论表明,最高占据分子轨道位于BODIPY部分,而最低未占据分子轨道则离域在BODIPY和磷酸三酯部分。因此,具有改进的光学和氧化还原性质的新型BODIPY衍生物的独特发展为荧光探针和生物成像技术铺平了道路。