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通过能量转移模型实现催化活性位点映射

Catalytically Active Site Mapping Realized through Energy Transfer Modeling.

作者信息

Thompson William J, Maldeni Kankanamalage Buddhima K P, Thaggard Grace C, Park Kyoung Chul, Martin Corey R, Niu Jia, Byers Jeffery A, Shustova Natalia B

机构信息

Department of Chemistry, Boston College, 02467, Chestnut Hill, MA, USA.

Department of Chemistry and Biochemistry, University of South Carolina, 29208, Columbia, SC, USA.

出版信息

Angew Chem Int Ed Engl. 2025 Jan 21;64(4):e202416695. doi: 10.1002/anie.202416695. Epub 2024 Nov 9.

Abstract

The demands of a sustainable chemical industry are a driving force for the development of heterogeneous catalytic platforms exhibiting facile catalyst recovery, recycling, and resilience to diverse reaction conditions. Homogeneous-to-heterogeneous catalyst transitions can be realized through the integration of efficient homogeneous catalysts within porous matrices. Herein, we offer a versatile approach to understanding how guest distribution and evolution impact the catalytic performance of heterogeneous host-guest catalytic platforms by implementing the resonance energy transfer (RET) concept using fluorescent model systems mimicking the steric constraints of targeted catalysts. Using the RET-based methodology, we mapped condition-dependent guest (re)distribution within a porous support on the example of modular matrices such as metal-organic frameworks (MOFs). Furthermore, we correlate RET results performed on the model systems with the catalytic performance of two MOF-encapsulated catalysts used to promote CO hydrogenation and ring-closing metathesis. Guests are incorporated using aperture-opening encapsulation, and catalyst redistribution is not observed under practical reaction conditions, showcasing a pathway to advance catalyst recyclability in the case of host-guest platforms. These studies represent the first generalizable approach for mapping the guest distribution in heterogeneous host-guest catalytic systems, providing a foundation for predicting and tailoring the performance of catalysts integrated into various porous supports.

摘要

可持续化学工业的需求是推动多相催化平台发展的动力,这些平台具有易于催化剂回收、循环利用以及对多种反应条件具有耐受性的特点。通过将高效均相催化剂整合到多孔基质中,可以实现均相催化剂向多相催化剂的转变。在此,我们提供了一种通用方法,通过使用模拟目标催化剂空间位阻的荧光模型系统来实施共振能量转移(RET)概念,以理解客体分布和演化如何影响多相主客体催化平台的催化性能。使用基于RET的方法,我们以金属有机框架(MOF)等模块化基质为例,绘制了多孔载体中条件依赖性客体(再)分布情况。此外,我们将在模型系统上进行的RET结果与用于促进CO加氢和闭环复分解反应的两种MOF封装催化剂的催化性能相关联。客体通过开孔封装引入,并且在实际反应条件下未观察到催化剂再分布,这展示了在主客体平台情况下提高催化剂可回收性的途径。这些研究代表了绘制多相主客体催化系统中客体分布的首个通用方法,为预测和定制整合到各种多孔载体中的催化剂性能奠定了基础。

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