Affiliation:
1. High Energy Density Sciences Division SLAC National Accelerator Laboratory 2575 Sand Hill Road Menlo Park CA 94025 USA
2. High Pressure Collaborative Access Team X‐Ray Sciences Division Argonne National Laboratory Argonne IL 60439 USA
Abstract
AbstractDehydrogenation of alkanes is of increasing importance in fulfilling global demand for olefins and offers a potential source of carbon‐neutral hydrogen as a co‐product. Currently commercial dehydrogenation processes occur at high‐temperatures (500–900 °C) which is energy intensive and results in side reactions and rapid coking of the catalysts. In addition, the hydrogen produced is often burned to maintain temperature and to inhibit the back reaction. Here, pressure is utilized as a parameter to enable novel chemical catalytic processes, and ambient‐temperature dehydrogenation of alkanes by palladium is observed at 50–100 MPa, with both hydrogen gas and olefins recovered on decompression. This reaction follows a fundamentally different path to current commercial high‐temperature low‐pressure dehydrogenation processes with the palladium catalyst reversibly forming a hydride intermediate.
Funder
Fusion Energy Sciences
U.S. Department of Energy
Office of Science
Argonne National Laboratory
Subject
Mechanical Engineering,Mechanics of Materials
Cited by
5 articles.
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