Abstract
NU-1000, a pyrene-containing benchmark metal-organic framework (MOF), is well-known for its utility and potential across a wide range of applications. Although the extended π-systems in NU-1000 confer favorable properties for diverse photochemical applications, they also increase the susceptibility of the MOF to photodegradation. However, the photostability of NU-1000 has yet to be systematically studied and remains poorly understood. Herein, we report that in the presence of oxygen, water, and light of appropriate energy, extensive oxidation of the pyrene linkers of NU-1000 can occur to yield terephthalic acid as the major decomposition product. Through extensive mechanistic studies, we show that the open framework structure of NU-1000 greatly facilitates linker oxidation, with more than 25-fold greater linker decomposition from the MOF within 3 h of photoirradiation compared to a homogeneous solution of the linker, brought about by rapid generation of pyrene-centred holes. By determining the specific conditions under which the MOF remains stable, our findings offer not just valuable strategies for preserving the integrity of NU-1000 for controlled applications but also reveal its ability to decompose into benign products under ambient light and oxygen, which could provide an eco-friendly route for avoiding environmental accumulation of MOF materials for various applications.
| Originalsprache | Englisch |
|---|---|
| Seiten (von - bis) | 3531-3541 |
| Seitenumfang | 11 |
| Fachzeitschrift | Chemistry of Materials |
| Jahrgang | 37 |
| Ausgabenummer | 9 |
| Frühes Online-Datum | 2025 |
| DOIs | |
| Publikationsstatus | Veröffentlicht - 2 Mai 2025 |
Fördermittel
W. Zeng acknowledges the A*STAR Research Attachment Programme (ARAP) and the Mahlke-Obermann Stiftung for the provision of a PhD scholarship. J.Y.C. Lim is grateful to the NRF Fellowship (Award number: NRF-NRFF15-2023-0007) for financial support. J. M. Chin acknowledges the European Research Council (ERC) for funding part of this work under the European Union\u2019s Horizon 2020 research and innovation programme (ERC Consolidator Grant agreement 101002176). Y. Benseghir acknowledges the O\u0308sterreichische Forschungsfo\u0308rderungsgesellschaft (FFG project BATMAN FFG-897938) for financial support. All authors thank the Mass Spectrometry Center, Faculty of Chemistry, University of Vienna for Maldi-TOF measurements. We thank Mr. Jerry Z. X. Hengfor his assistance with solid state UV\u2013vis experiments.
ÖFOS 2012
- 104011 Materialchemie
- 205004 Funktionsmaterialien
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