Thermodynamics of the Flexible Metal-Organic Framework Material MIL-53(Cr) From First Principles
arXiv:1703.03440 · doi:10.1021/acs.jpcc.6b11692
Abstract
We use first-principles density functional theory total energy and linear response phonon calculations to compute the Helmholtz and Gibbs free energy as a function of temperature, pressure, and cell volume in the flexible metal-organic framework material MIL-53(Cr) within the quasiharmonic approximation. GGA and metaGGA calculations were performed, each including empirical van der Waals (vdW) forces under the D2, D3, or D3(BJ) parameterizations. At all temperatures up to 500 K and pressures from -30 MPa to 30 MPa, two minima in the free energy versus volume are found, corresponding to the narrow pore () and large pore () structures. Critical positive and negative pressures are identified, beyond which there is only one free energy minimum. While all results overestimated the stability of the phase relative to the phase, the best overall agreement with experiment is found for the metaGGA PBEsol+RTPSS+U+J approach with D3 or D3(BJ) vdW forces. For these parameterizations, the calculated free energy barrier for the - transition is only 3 to 6 kJ per mole of Cr(OH)(CHO).
References in corpus (6)
- Restoring the density-gradient expansion for exchange in solids and surfaces
- Generalized gradient approximation for solids and their surfaces
- Thermodynamics of Guest-Induced Structural Transitions in Hybrid Organic-Inorganic Frameworks
- The Behavior of Flexible MIL-53(Al) upon CH4 and CO2 Adsorption
- First-Principles Studies of the Atomic, Electronic, and Magnetic Structure of a-MnO2 (Cryptomelane)
- Challenges in first-principles NPT molecular dynamics of soft porous crystals: A case study on MIL-53(Ga)