School of Physical Science and Technology, ShanghaiTech University, Shanghai 201210, China.
J Org Chem. 2023 Mar 3;88(5):2792-2800. doi: 10.1021/acs.joc.2c02424. Epub 2023 Feb 14.
Optoelectronic properties of organic chromophores (OCPs) are to a large extent dictated by the chemical structures. Herein, we synthesized a new series of ionic phosphorus(P)-heteropines via the methylation of the P(III) center. Our studies revealed that methylation is highly dependent on the P(III) environments (NPN, NPC, and CPC), in which adjacent nitrogen atoms greatly withdraw electron density of the P(III) center. The observation of noncovalent interactions between solvent molecules and the molecular backbones of the related P-heterocycle in the single crystal structure implied tunable molecular conformations. Different from the red-shifted absorption and emission spectra of ionic P-OCPs induced by either decreased lowest unoccupied molecular orbital (LUMO) or intramolecular charge transfer (ICT) state in previous studies, current ionic P-heterocycles exhibit blue-shifted absorption and emission spectra compared to the nonionic counterparts. Our experimental and theoretical studies suggest that the unexpected photophysical characters are probably due to the counter-anion induced structure twisting via intermolecular noncovalent interactions between N-indole and (OTf), and/or strong intermolecular O···F bonding between (MI) and (OTf). Our studies also revealed that the P-environments (NPN, NPC, and CPC) conjunctly impact the photophysical properties of the ionic P-heteropines. Overall, the fact that the P-environment-regulated noncovalent interactions induce the rich structure dynamics and photophysics offers us with a new and effective strategy to fine-tune the optical properties of OCPs.
有机发色团(OCPs)的光电性质在很大程度上取决于其化学结构。在此,我们通过 P(III) 中心的甲基化合成了一系列新型的离子型磷(P)-杂环化合物。我们的研究表明,甲基化高度依赖于 P(III) 环境(NPN、NPC 和 CPC),其中相邻的氮原子大大拉低了 P(III) 中心的电子密度。在单晶结构中观察到溶剂分子与相关 P-杂环分子骨架之间的非共价相互作用,暗示了可调变的分子构象。与先前研究中由于最低未占据分子轨道(LUMO)或分子内电荷转移(ICT)态降低而导致的离子 P-OCPs 的吸收和发射光谱红移不同,当前的离子 P-杂环化合物与非离子型相比表现出吸收和发射光谱蓝移。我们的实验和理论研究表明,这种意想不到的光物理性质可能归因于阴离子诱导的结构扭曲,通过 N-吲哚和(OTf)之间的分子间非共价相互作用,和/或(MI)和(OTf)之间的强分子间 O···F 键合。我们的研究还表明,P 环境(NPN、NPC 和 CPC)共同影响离子 P-杂环化合物的光物理性质。总体而言,P 环境调控的非共价相互作用诱导丰富的结构动力学和光物理,为我们提供了一种新的有效策略来精细调节 OCPs 的光学性质。