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Toward Totally Defined Nanocatalysis: Deep Learning Reveals the Extraordinary Activity of Single Pd/C Particles

Authors :
Dmitry B. Eremin
Alexey S. Galushko
Daniil A. Boiko
Evgeniy O. Pentsak
Igor V. Chistyakov
Valentine P. Ananikov
Source :
Journal of the American Chemical Society. 144:6071-6079
Publication Year :
2022
Publisher :
American Chemical Society (ACS), 2022.

Abstract

Homogeneous catalysis is typically considered "well-defined" from the standpoint of catalyst structure unambiguity. In contrast, heterogeneous nanocatalysis often falls into the realm of "poorly defined" systems. Supported catalysts are difficult to characterize due to their heterogeneity, variety of morphologies, and large size at the nanoscale. Furthermore, an assortment of active metal nanoparticles examined on the support are negligible compared to those in the bulk catalyst used. To solve these challenges, we studied individual particles of the supported catalyst. We made a significant step forward to fully characterize individual catalyst particles. Combining a nanomanipulation technique inside a field-emission scanning electron microscope with neural network analysis of selected individual particles unexpectedly revealed important aspects of activity for widespread and commercially important Pd/C catalysts. The proposed approach unleashed an unprecedented turnover number of 10

Details

ISSN :
15205126 and 00027863
Volume :
144
Database :
OpenAIRE
Journal :
Journal of the American Chemical Society
Accession number :
edsair.doi.dedup.....f680f815108f1191c801b4381e654e7e