Dual Chemical Looping/Catalytic Process for Alkylation of Benzene With Ethane and Propane Yielding Ethylbenzene and Cumene Over Copper‐Containing Mordenite
Abstract
ABSTRACT Given the sustained demand for alkylated aromatics and the strained olefin market, there is an urgent need to develop efficient one‐step processes for the direct alkylation of aromatics using alkanes instead of olefins. Such technologies offer greater energy efficiency and sustainability by eliminating the need for separate, energy‐intensive alkane dehydrogenation steps. In this work, we report a dual chemical looping / catalytic process that couples alkane dehydrogenation with aromatic alkylation over a copper‐containing mordenite yielding up to 25% of alkylated aromatics with >97% selectivity per cycle. In situ MAS NMR and FTIR spectroscopies combined with DFT calculations showed that the alkylation of benzene with alkanes proceeds via a π‐bounded Cu(I)‐olefin intermediate, which subsequently interacts with benzene, catalyzed by Brønsted acid sites, leading to alkylated products that readily desorb from the active material into the gas phase. DFT calculations show that alkylation mediated solely by Cu(I) has prohibitively high barriers (>1.8 eV), whereas a bi‐functional pathway involving both Cu(I) and Brønsted acid sites can proceed with significantly lower barrier (0.8 eV) through a concerted C–C bond formation and proton transfer step.
Article Details
Authors (8)
Florent J. Dubray
Paul Scherrer Institute (PSI) Center For Energy and Environmental Sciences Villigen 5232 Switzerland
Yu‐Hsun Wang
Department of Chemical Engineering University of California Davis California 95616 USA
Mikalai A. Artsiusheuski
Center for Energy and Environmental Sciences
Jiawei Guo
Department of Chemical Engineering
René Verel
Department of Chemistry and Applied Biosciences
Ambarish Kulkarni
Department of Chemical Engineering
Jeroen A. van Bokhoven
Vitaly L. Sushkevich
Center for Energy and Environmental Sciences