Feuerstein Thomas J, Goswami Bhupendra, Rauthe Pascal, Köppe Ralf, Lebedkin Sergei, Kappes Manfred M, Roesky Peter W
Institute for Inorganic Chemistry , Karlsruhe Institute of Technology (KIT) , Engesserstr. 15 , 76131 Karlsruhe , Germany . Email:
Institute of Nanotechnology , Karlsruhe Institute of Technology (KIT) , Hermann-von-Helmholtz-Platz 1 , 76344 , Eggenstein-Leopoldshafen , Germany.
Chem Sci. 2019 Apr 9;10(18):4742-4749. doi: 10.1039/c9sc00629j. eCollection 2019 May 14.
The enantiomerically pure ligand ,-diphenyl-,'-bis(()-1-phenylethyl)phosphinimidic amide (; (R)-HPEPIA) was synthesized and subsequently deprotonated with alkali metal precursors to yield dimeric complexes [M{(R)-PEPIA}] (M = Li (), Na (), K (), Rb ()). The cesium compound [M{(R)-PEPIA}] () crystallized as a cocrystal composed of dimeric ([Cs{(R)-PEPIA}] ( ) and 1D-polymeric ([Cs{(R)-PEPIA}] ) ( ) species in a 1 : 1 ratio. The coordination polymer features a unique sinus-shaped configuration of repeating -Cs-N-P-N-Cs-N-P-N- units. Unusual photoluminescence (PL) properties were found for solid : in contrast to the fluorescent ligand , the alkali metal complexes show phosphorescence at low temperatures (<100 K) and thermally activated delayed fluorescence (TADF) above ∼150 K. The latter provides for PL quantum yields up to 36% () at ambient temperature. DFT calculations support that both and have similar singlet and triplet excited states with energy separations of a few tens of meV. The strongly enhanced intersystem crossing (ISC) in the metal complexes, resulting in TADF, is attributed to their dimeric structure. This suggests that the fluorophore dimerization may serve as a tool to effect ISC for the design of TADF emitters.
合成了对映体纯的配体,-二苯基-,'-双(()-1-苯乙基)磷亚胺酰胺(;(R)-HPEPIA),随后用碱金属前体将其去质子化,得到二聚配合物[M{(R)-PEPIA}](M = Li(),Na(),K(),Rb())。铯化合物[M{(R)-PEPIA}]()以共晶体形式结晶,由二聚体([Cs{(R)-PEPIA}]())和一维聚合物([Cs{(R)-PEPIA}]())物种以1:1的比例组成。配位聚合物具有独特的重复-Cs-N-P-N-Cs-N-P-N-单元的正弦形构型。发现固体具有不寻常的光致发光(PL)特性:与荧光配体相比,碱金属配合物在低温(<100 K)下显示磷光,在约150 K以上显示热激活延迟荧光(TADF)。后者在室温下提供高达36%()的PL量子产率。密度泛函理论计算支持和具有相似的单重态和三重态激发态,能量间隔为几十meV。金属配合物中强烈增强的系间窜越(ISC)导致TADF,这归因于它们的二聚体结构。这表明荧光团二聚化可作为一种工具来实现ISC,用于设计TADF发射体。