Muthig André M T, Krumrein Marcel, Wieland Justin, Gernert Markus, Kerner Florian, Pflaum Jens, Steffen Andreas
Department of Chemistry and Chemical Biology, TU Dortmund University, Otto-Hahn-Str. 6, 44227 Dortmund, Germany.
Experimental Physics, Experimental Physics VI, University of Würzburg, Am Hubland, 97074 Würzburg, Germany.
Inorg Chem. 2022 Sep 19;61(37):14833-14844. doi: 10.1021/acs.inorgchem.2c02376. Epub 2022 Sep 7.
Molecular near-IR (NIR) triplet-state emitters are of importance for the development of new, organic-electronics-based telecommunication technologies as optical fibers operating in the corresponding spectral bands allow for data transfer over much longer distances due to the significantly lower attenuation. However, achieving such low-energy triplet excited states with good radiative rate constants is very challenging, and studies regarding the single-photon emission of organometallics in this energy range are scarce. We have prepared a series of trigonal Cu CAAC complexes bearing chelating ligands with O, N, S, and Se donor atoms and studied their photophysical properties in this context. The compounds show weak low-energy absorption in solution between 400 and 500 nm due to mixed Cu → CAAC MLCT/LLCT states, resulting in yellow-green to orange appearance, which we have also correlated to the N NMR resonances of the π-accepting carbene ligand. In the solid state, phosphorescence from dominant (Cu → CAAC) CT states is observed at room temperature. The emission of the complexes is bathochromically shifted in comparison to structurally related linearly coordinated copper(I) CAAC complexes due to structural reorganization in the excited state to a T-shape. For [Cu(dbm)(CAAC)], the broad phosphorescence with outstanding λ = 760 nm tailors out to ca. 1100 nm and leads to its proof-of-concept application as a nonclassical single-photon light source, constituting key functional units for the implementation of tap-proof data transfer.
分子近红外(NIR)三重态发射体对于新型有机电子通信技术的发展至关重要,因为在相应光谱波段工作的光纤由于衰减显著降低,能够实现更长距离的数据传输。然而,要实现具有良好辐射速率常数的低能三重态激发态极具挑战性,且在该能量范围内关于有机金属化合物单光子发射的研究很少。我们制备了一系列带有O、N、S和Se供体原子的螯合配体的三角铜CAAC配合物,并在此背景下研究了它们的光物理性质。由于混合的Cu→CAAC MLCT/LLCT态,这些化合物在溶液中于400至500 nm之间表现出较弱的低能吸收,导致其呈现黄绿色至橙色外观,我们还将其与π-接受卡宾配体的N NMR共振相关联。在固态下,室温下观察到主要(Cu→CAAC)CT态的磷光。与结构相关的线性配位铜(I)CAAC配合物相比,这些配合物的发射发生红移,这是由于激发态结构重排为T形。对于[Cu(dbm)(CAAC)],其在λ = 760 nm处具有出色的宽磷光延伸至约1100 nm,并导致其作为非经典单光子光源的概念验证应用,构成了实现防窃听数据传输的关键功能单元。