Synchrotron Infrared Microspectroscopy of Zeolite Catalysts

Author:

Howe Russell F.1,Wright Paul A.2,Tuxworth Ivalina2,Frogley Mark D.3,Cinque Gianfelice4

Affiliation:

1. University of Aberdeen, AB24 3UE, UK

2. EastCHEM School of Chemistry, University of St Andrews, KY16 9ST, UK

3. MIRIAM beamline B22, Diamond Light Source, Harwell Science and Innovation Campus, Didcot, OX11 0DE, UK

4. MIRIAM beamline B22, Diamond Light Source, Harwell Science and Innovation Campus, Didcot, OX11 0DE, UK; Multifunctional Material & Composite Lab, Department of Engineering Science, University of Oxford, OX1 3PJ, UK

Abstract

This article reviews recent work undertaken at the beamline B22 of the Diamond Light Source using infrared (IR) microspectroscopy to characterise zeolite catalysts and to study their reactivity in real time. The advantage of vibrational microspectroscopic analysis when linked to the brightness and spectral bandwidth of synchrotron IR light are illustrated. The high spatial resolution means that the uniformity of acid site concentrations within individual large crystals of zeolites and between different crystals can be readily checked and changes to acid site concentrations within crystals resulting from steam treatment mapped. When an in situ reaction cell is coupled with mass spectrometric analysis of evolved gases the rapid time response of the method has provided new insight into the initial stages of the conversion of methanol to hydrocarbons over ZSM-5 and SAPO-34 single crystals. Future prospects for applying the method to other types of zeolite catalysed reactions with improved reaction cell design are also discussed.

Publisher

Johnson Matthey

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