Abstract
We demonstrate the benefits of using cofacial Zn–porphyrins as structural synthons in coordination-driven self-assembled prisms to produce cage-like singlet oxygen (1O2) photosensitizers with tunable properties. In particular, we describe the photosensitizing and emission properties of palladium- and copper-based supramolecular capsules, and demonstrate that the nature of the bridging metal nodes in these discrete self-assembled prisms strongly influences 1O2 generation at the Zn–porphyrin centers. The PdII-based prism is a particularly robust photosensitizer, whereas the CuII self-assembled prism is a dormant photosensitizer that could be switched to a ON state upon disassembly of the suprastructure. Furthermore, the well-defined cavity within the prisms allowed encapsulation of pyridine-based ligands and fullerene derivatives, which led to a remarkable guest tuning of the 1O2 production.
| Original language | English |
|---|---|
| Pages (from-to) | 4371-4381 |
| Number of pages | 11 |
| Journal | Chemistry - A European Journal |
| Volume | 24 |
| Issue number | 17 |
| DOIs | |
| Publication status | Published - 20 Mar 2018 |
Keywords
- host–guest systems
- porphyrins
- self-assembly
- singlet oxygen
- supramolecular photosensitizers
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