Department of Chemistry, University of Alberta, Edmonton, Alberta, Canada, T6G 2G2.
J Phys Chem A. 2012 Jan 12;116(1):46-54. doi: 10.1021/jp2079296. Epub 2011 Dec 22.
General chemical strategies which provide controlled changes in the emission or absorption properties of biologically compatible fluorophores remain elusive. One strategy employed is the conversion of a fluorophore-attached alkyne (or azide) to a triazole through a copper-catalyzed azide-alkyne coupling (CuAAC) reaction. In this study, we have computationally examined a series of structurally related 2,1,3-benzoxadiazole (benzofurazan) fluorophores and evaluated changes in their photophysical properties upon conversion from alkyne (or azide) to triazole forms. We have also determined the photophysical properties for a known set of benzoxadiazole compounds. The absorption and emission energies have been determined computationally using time-dependent density functional theory (TD-DFT) with the Perdew, Burke, and Ernzerhof exchange-correlation density functional (PBE0) and the 6-31+G(d) basis set. The TD-DFT results consistently agreed with the experimentally determined absorption and emission wavelengths except for certain compounds where charge-transfer excited states occurred. In addition to determining the absorption and emission wavelengths, simple methods for predicting relative quantum yields previously derived from semiempirical calculations were reevaluated on the basis of the new TD-DFT results and shown to be deficient. These results provide a necessary framework for the design of new substituted benzoxadiazole fluorophores.
通用的化学策略可以提供对生物相容荧光团的发射或吸收性质的控制变化,但目前仍难以实现。一种采用的策略是通过铜催化的叠氮化物-炔烃偶联(CuAAC)反应将连接有荧光团的炔烃(或叠氮化物)转化为三唑。在这项研究中,我们通过计算研究了一系列结构相关的 2,1,3-苯并恶二唑(苯并呋咱)荧光团,并评估了它们从炔烃(或叠氮化物)转化为三唑形式时光物理性质的变化。我们还确定了一组已知的苯并恶二唑化合物的光物理性质。使用时间相关密度泛函理论(TD-DFT),我们通过 Perdew、Burke 和 Ernzerhof 交换相关密度泛函(PBE0)和 6-31+G(d)基组计算了吸收和发射能量。TD-DFT 结果与实验确定的吸收和发射波长一致,除了某些发生电荷转移激发态的化合物外。除了确定吸收和发射波长外,还根据新的 TD-DFT 结果重新评估了先前从半经验计算中得出的用于预测相对量子产率的简单方法,结果表明这些方法存在缺陷。这些结果为设计新的取代苯并恶二唑荧光团提供了必要的框架。