Operando Luminescence Thermometry of a Solid Catalyst in a Reactor during a High‐Temperature Chemical Process

Author:

Groefsema Daniël W.1,Rabouw Freddy T.12,Boele Michiel3,van Bavel Alexander P.3,Weckhuysen Bert M.1ORCID

Affiliation:

1. Inorganic Chemistry and Catalysis group Institute for Sustainable and Circular Chemistry Department of Chemistry Utrecht University Universiteitsweg 99 3584 CG Utrecht, The Netherlands

2. Soft Condensed Matter and Biophysics group Debye Institute for Nanomaterials Science Department of Physics Utrecht University Princetonplein 1 3584 CC Utrecht, The Netherlands

3. Shell Global Solutions International B.V. Grasweg 31 1031 HW Amsterdam, The Netherlands

Abstract

AbstractIn most catalytic processes, thermal energy is released or consumed locally in a reactor due to the exothermicity or endothermicity of the chemical reactions. This causes the actual operating temperature of the catalyst material to deviate from the reactor temperature, which can lead to underperformance, reduced catalyst stability, or even thermal runaway. Conventional methods to measure the catalyst temperature, with a thermocouple in the reactor oven or in the catalyst bed, suffer from complications because of separation between the sensor and catalyst material, chemical activity of the thermocouple/coating material, added complexity of the setup, and disruption of the reactant flow and heat flow through the catalyst bed. Here, we show the possibilities and challenges of luminescence thermometry as an analytical technique for remote temperature monitoring of the local catalyst temperature in a strongly exothermic high‐temperature reaction environment. We observe that the luminescence lifetime depends not only temperature, but also on oxygen concentration, which can introduce a significant systematic error of up to 40 °C in the recorded temperature. In the case of ratiometric luminescence thermometry, this error is strongly reduced to ~5 °C. We use the ratiometric technique to confirm its applicability in the exothermic oxidative coupling of methane (OCM) process at high reaction temperatures, showing an exothermic increase in the local catalyst temperature of up to 100 °C, relative to the constant reactor temperature under inert conditions.

Funder

Nederlandse Organisatie voor Wetenschappelijk Onderzoek

Publisher

Wiley

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