Non‐Classical Deactivation Mechanism in a Supported Intermetallic Catalyst for Propane Dehydrogenation

Author:

Tian Jinshu1,Kong Ru1,Deng Bin1,Cheng Yi1,Hu Kerou1,Zhong Zhangnan1,Sun Tulai1,Tan Mingwu2,Chen Luwei2,Zhao Jia1,Wang Yong3,Li Xiaonian1,Zhu Yihan1ORCID

Affiliation:

1. Center for Electron Microscopy, College of Chemical Engineering, State Key Laboratory Breeding Base of Green Chemistry Synthesis Technology and Institute for Frontier and Interdisciplinary Sciences Zhejiang University of Technology Hangzhou 3100144 P. R. China

2. Institute of Sustainability for Chemicals, Energy and Environment Agency for Science, Technology and Research (A*STAR) 1 Pesek Road Jurong Island 627833 Singapore

3. Voiland School of Chemical Engineering and Bioengineering Washington State University Pullman WA 99164 USA

Abstract

AbstractPlatinum‐based supported intermetallic alloys (IMAs) demonstrate exceptional performance in catalytic propane dehydrogenation (PDH) primarily because of their remarkable resistance to coke formation. However, these IMAs still encounter a significant hurdle in the form of catalyst deactivation. Understanding the complex deactivation mechanism of supported IMAs, which goes beyond conventional coke deposition, requires meticulous microscopic structural elucidation. In this study, we unravel a nonclassical deactivation mechanism over a PtZn/γ‐Al2O3 PDH catalyst, dictated by the PtZn to Pt3Zn nanophase transformation accompanied with dezincification. The physical origin lies in the metal support interaction (MSI) that enables strong chemical bonding between hydroxyl groups on the support and Zn sites on the PtZn phase to selectively remove Zn species followed by the reconstruction towards Pt3Zn phase. Building on these insights, we have devised a solution to circumvent the deactivation by passivating the MSI through surface modification of γ‐Al2O3 support. By exchanging protons of hydroxyl groups with potassium ions (K) on the γ‐Al2O3 support, such a strategy significantly minimizes the dezincification of PtZn IMA via diminished metal‐support bonding, which dramatically reduces the deactivation rate from 0.2044 to 0.0587 h−1. These findings decode the nonclassical PDH deactivation mechanism over supported IMA catalysts and elaborate a new logic for the design of high‐performance IMA based PDH catalysts with long‐term stability.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Fundamental Research Funds for the Provincial Universities of Zhejiang

Publisher

Wiley

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