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Published January 14, 2020 | Supplemental Material
Journal Article Open

Synthesis–Structure–Activity Relations in Fe-CHA for C–H Activation: Control of Al Distribution by Interzeolite Conversion

Abstract

The search for structurally relevant Al-arrangements in zeolites is an important endeavor for single site catalysis. Little is known about the mechanisms and zeolite dynamics during synthesis that are responsible for creating those Al-ensembles. Here, new synthetic strategies for creating Al-hosts in small-pore zeolites suitable for divalent cation catalysis are uncovered, leading to a mechanistic proposal for Al-organization during crystallization. As such, unique synthesis-structure-activity relations are demonstrated for the partial oxidation of methane on Fe-exchanged CHA-zeolites. With modified interzeolite conversions, the divalent cation capacity of the resulting high Si SSZ-13 zeolites (Si/Al ~ 35) can be reproducibly controlled in a range between 0.04 and 0.34 Co²⁺/Al. This capacity is a proxy for the distribution of framework aluminum in pairs and correlates with the methanol production per Al when these zeolites host the α-Fe^(II) redox active site. The uncovered IZC synthesis-structure relations paint an Al-distribution hypothesis, where incongruent dissolution of the starting USY zeolite and fast synthesis kinetics with atypical growth modes allow assembling specific Al-arrangements, resulting in a high divalent cation capacity. Prolonged synthesis times and high temperatures overcome the energetic barriers for T-atom reshuffling favoring Al-isolation. These mechanisms and the relations uncovered in this work will guide the search for relevant Al-ensembles in a range of zeolite catalysts where controlling the environment for a single active site is crucial.

Additional Information

© 2019 American Chemical Society. Received: September 11, 2019; Revised: November 27, 2019; Published: November 27, 2019. We thank the Research Foundation - Flanders (FWO) for funding (Grants G0A2216N to B.F.S., 12E8617N to M.D, 11D4718N to D.P.). C.V.G. acknowledges the KU Leuven internal funds for a PDM postdoctoral fellowship. S.H. thanks the National Science Foundation (NSF) under Grant Number 9724240 and partially supported by the MRSEC Program of the NSF under Award Number DMR-520565. M.D. acknowledges KU Leuven BOF. J.S. is grateful to Flemish Hercules Foundation (AKUL/13/19). SACHEM is explicitly thanked for providing the TMAdaOH organic structure directing agent. The authors declare no competing financial interests.

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Created:
August 19, 2023
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October 18, 2023