Decoding reactive structures in dilute alloy catalysts

Publication date

2022-02-11

Authors

Marcella, Nicholas
Lim, Jin Soo
Płonka, Anna M.
Yan, George
Owen, Cameron J.
van der Hoeven, Jessi E SISNI 0000000493299290
Foucher, Alexandre C.
Ngan, Hio Tong
Torrisi, Steven B.
Marinkovic, Nebojsa S.

Editors

Advisors

Supervisors

Document Type

Article
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cc_by

Abstract

Rational catalyst design is crucial toward achieving more energy-efficient and sustainable catalytic processes. Here the authors report a data-driven approach for understanding catalytic reactions mechanisms in dilute bimetallic catalysts by combining X-ray absorption spectroscopy with activity studies and kinetic modeling.Rational catalyst design is crucial toward achieving more energy-efficient and sustainable catalytic processes. Understanding and modeling catalytic reaction pathways and kinetics require atomic level knowledge of the active sites. These structures often change dynamically during reactions and are difficult to decipher. A prototypical example is the hydrogen-deuterium exchange reaction catalyzed by dilute Pd-in-Au alloy nanoparticles. From a combination of catalytic activity measurements, machine learning-enabled spectroscopic analysis, and first-principles based kinetic modeling, we demonstrate that the active species are surface Pd ensembles containing only a few (from 1 to 3) Pd atoms. These species simultaneously explain the observed X-ray spectra and equate the experimental and theoretical values of the apparent activation energy. Remarkably, we find that the catalytic activity can be tuned on demand by controlling the size of the Pd ensembles through catalyst pretreatment. Our data-driven multimodal approach enables decoding of reactive structures in complex and dynamic alloy catalysts.

Keywords

Bimetallic nanocatalysts, Surface, Pd, Adsorption, Nanoparticles, Co, Hydrogenation, Segregation, Activation, Mechanisms, General Physics and Astronomy, General Chemistry, General Biochemistry,Genetics and Molecular Biology

Citation

Marcella, N, Lim, J S, Płonka, A M, Yan, G, Owen, C J, van der Hoeven, J E S, Foucher, A C, Ngan, H T, Torrisi, S B, Marinkovic, N S, Stach, E A, Weaver, J F, Aizenberg, J, Sautet, P, Kozinsky, B & Frenkel, A I 2022, 'Decoding reactive structures in dilute alloy catalysts', Nature Communications, vol. 13, no. 1, 832. https://doi.org/10.1038/s41467-022-28366-w