系统间交叉
卟啉
光化学
单重态
微型多孔材料
金属有机骨架
化学物理
三重态
单重态裂变
材料科学
化学
拓扑(电路)
物理
原子物理学
物理化学
激发态
有机化学
吸附
组合数学
数学
作者
Sreehari Surendran Rajasree,Saied Md Pratik,Venkatesh Gude,Jierui Yu,Brendan MacAins,David J. Gosztola,H. Christopher Fry,Pravas Deria
出处
期刊:Angewandte Chemie
[Wiley]
日期:2025-08-12
卷期号:64 (39): e202510720-e202510720
被引量:3
标识
DOI:10.1002/anie.202510720
摘要
Abstract Solid‐state artificial photosystems need precise control over their singlet or triplet excited states to enable desired photochemical transformations. While persistent triplets are often selected to drive chemical bond formation or spin‐specific photoreactions, singlets can allow for ambient applications. Among different heterogeneous systems, metal–organic frameworks (MOFs) offer a solution‐stable platform with many benefits, including large chemically accessible interior surfaces where excitons can be transferred from their original formation sites. Porphyrins demonstrate high intersystem crossing efficiency, with QY ISC ≈ 80% for free‐base (FB) cores, which can be increased to about 92% for palladium‐metalated cores. This study shows that framework assembly prevents ISC in FB‐MOFs; whereas, ISC is enhanced in Pd‐MOFs compared to monomeric linkers. The MOF topology influences the excited state dynamics, resulting in short‐lived triplets with τ 0.5 ≲10 ps in microporous MOFs. This extensive control over QY ISC (from 0 to approximately 100%) and triplet behavior through framework assembly offers new design principles for creating artificial photosystems that operate exclusively in their singlet or triplet states manifold.
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