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  4. Thermal Engineering of Metal-Organic Frameworks for Adsorption Applications: A Molecular Simulation Perspective
 
research article

Thermal Engineering of Metal-Organic Frameworks for Adsorption Applications: A Molecular Simulation Perspective

Wieme, Jelle
•
Vandenbrande, Steven
•
Lamaire, Aran
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October 23, 2019
ACS Applied Materials & Interfaces

Thermal engineering of metal-organic frameworks for adsorption-based applications is very topical in view of their industrial potential, in particular, since heat management and thermal stability have been identified as important obstacles. Hence, a fundamental understanding of the structural and chemical features underpinning their intrinsic thermal properties is highly sought-after. Herein, we investigate the nanoscale behavior of a diverse set of frameworks using molecular simulation techniques and critically compare properties such as thermal conductivity, heat capacity, and thermal expansion with other classes of materials. Furthermore, we propose a hypothetical thermodynamic cycle to estimate the temperature rise associated with adsorption for the most important greenhouse and energy-related gases (CO2 and CH4). This macroscopic response on the heat of adsorption connects the intrinsic thermal properties with the adsorption properties and allows us to evaluate their importance.

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Type
research article
DOI
10.1021/acsami.9b12533
Web of Science ID

WOS:000492802100035

Author(s)
Wieme, Jelle
Vandenbrande, Steven
Lamaire, Aran
Kapil, Venkat  
Vanduyfhuys, Louis
Van Speybroeck, Veronique
Date Issued

2019-10-23

Publisher

AMER CHEMICAL SOC

Published in
ACS Applied Materials & Interfaces
Volume

11

Issue

42

Start page

38697

End page

38707

Subjects

Nanoscience & Nanotechnology

•

Materials Science, Multidisciplinary

•

Science & Technology - Other Topics

•

Materials Science

•

metal-organic frameworks

•

heat capacity

•

thermal conductivity

•

thermal expansion

•

gas adsorption

•

molecular simulations

•

thermal engineering

•

high h-2 adsorption

•

methane storage

•

gas-storage

•

force-field

•

irreversible-processes

•

hydrogen storage

•

thin-film

•

pore-size

•

part ii

•

conductivity

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
COSMO  
Available on Infoscience
November 10, 2019
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/162806
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