From Methane to Methanol: Pd-iC-CeO2 Catalysts Engineered for High Selectivity via Mechano-Chemical Synthesis
Creators
- Jiménez, Juan D.1
-
Lustemberg, Pablo G.2
*
- Danielis, Maila3
- Fernández-Villanueva, Estefanía2, 4
- Hwang, Sooyeon5
- Waluyo, Iradwikanari6
- Hunt, Adrian6
- Wierzbicki, Dominik6
- Zhang, Jie7
- Qi, Long7
- Trovarelli, Alessandro3
- Rodriguez, Jose A.1, 8
- Colussi, Sara3
- Ganduglia-Pirovano, M. Verónica2
- Senanayake, Sanjaya D.1
- 1. Chemistry Division, Brookhaven National Laboratory, Upton, NY, 11973, USA
- 2. Institute of Catalysis and Petrochemistry, ICP, Spanish National Research Council, CSIC, 28049 Madrid, Spain
- 3. Polytechnic Department, University of Udine and INSTM, Via del Cotonificio 108, 33100 Udine
- 4. Universitat Politècnica de València, Camí de Vera s/n, 46022, València, Spain
- 5. Center for Functional Nanomaterials, Brookhaven National Laboratory, Upton, NY, 11973, USA
- 6. National Synchrotron Light Source II, Brookhaven National Laboratory, Upton, New York 11973, USA
- 7. Ames National Laboratory, Iowa State University, Ames, Iowa, 50011, USA
- 8. Department of Chemistry, State University of New York Stony Brook, Stony Brook, NY 11794, USA
* Contact person
Description
In the pursuit of selective conversion of methane directly to methanol in the liquid phase, a common challenge is the concurrent formation of undesirable liquid oxygenates or combustion byproducts. However, we demonstrate that monometallic Pd-CeO2 catalysts, modified by carbon, created by a simple mechanochemical synthesis method exhibit 100% selectivity towards methanol at 75°C, using hydrogen peroxide as oxidizing agent. The solvent-free synthesis yields a distinctive Pd-iC-CeO2 interface, where interfacial carbon (iC) modulates metal-oxide interactions and facilitates tandem methane activation and peroxide decomposition, thus resulting in an exclusive methanol selectivity of 100% with a rate of 117 µmol/gcat at 75°C. Notably, solvent interactions of H2O2 (aq) were found to be critical for methanol selectivity through a DFT-simulated Eley-Rideal-like mechanism. This mechanism uniquely enables the direct conversion of methane into methanol via a solid-liquid-gas process.
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References
Journal reference J. D. Jiménez, P. G. Lustemberg, M. Danielis, E. Fernández-Villanueva, S. Hwang, I. Waluyo, A. Hunt, D. Wierzbicki, J. Zhang, L. Qi, A. Trovarelli, J. A. Rodriguez, S. Colussi, M. V. Ganduglia-Pirovano, S. D. Senanayake, J. Am. Chem. Soc, XX, XXX-XXX (2024)