Journal article
Thermodynamics of Methane Adsorption on Copper HKUST-1 at Low Pressure
The journal of physical chemistry letters, Vol.6(13), pp.2439-2443
07/02/2015
Handle:
https://hdl.handle.net/2376/110196
PMID: 26266715
Abstract
Metal-organic frameworks (MOFs) can be engineered as natural gas storage materials by tuning the pore structures and surface properties. Here we report the direct measurement of CH4 adsorption enthalpy on a paddlewheel MOF (Cu HKUST-1) using gas adsorption calorimetry at 25 °C at low pressures (below 1 bar). In this pressure region, the CH4-CH4 intermolecular interactions are minimized and the energetics solely reflects the CH4-MOF interactions. Our results suggest moderately exothermic physisorption with an enthalpy of -21.1 ± 1.1 kJ/mol CH4 independent of coverage. This calorimetric investigation complements previous computational and crystallographic studies by providing zero coverage enthalpies of CH4 adsorption. The analysis of the new and literature data suggests that in initial stages of adsorption the CH4-HKUST-1 interaction tends to be more sensitive to the pore dimension than to the guest polarizability, suggesting a less specific chemical binding role for the open Cu site.
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Details
- Title
- Thermodynamics of Methane Adsorption on Copper HKUST-1 at Low Pressure
- Creators
- Di Wu - †Peter A. Rock Thermochemistry Laboratory and NEAT ORU, University of California, Davis, One Shields Avenue, Davis, California 95616, United StatesXiaofeng Guo - ‡Earth and Environmental Sciences Division, Los Alamos National Laboratory, Los Alamos, New Mexico 87545, United StatesHui Sun - §State Key Laboratory of Chemical Engineering, East China University of Science and Technology, 130 Meilong Road, Shanghai 200237, ChinaAlexandra Navrotsky - †Peter A. Rock Thermochemistry Laboratory and NEAT ORU, University of California, Davis, One Shields Avenue, Davis, California 95616, United States
- Publication Details
- The journal of physical chemistry letters, Vol.6(13), pp.2439-2443
- Academic Unit
- Chemistry, Department of; Chemical Engineering and Bioengineering, School of
- Publisher
- United States
- Identifiers
- 99900546912301842
- Language
- English
- Resource Type
- Journal article