Keyword search (4,163 papers available)

"Quezada-Novoa V" Authored Publications:

Title Authors PubMed ID
1 Light-Activated Micromotors in Air Propelled by Thermal Convection Mena-Giraldo P; Mandl GA; Quezada-Novoa V; Garcia-Henao C; Bondon N; Hazlett MJ; Capobianco JA; 40964823
CNSR
2 Identification of Adsorption Sites for CO2 in a Series of Rare-Earth and Zr-Based Metal-Organic Frameworks Tassé D; Quezada-Novoa V; Copeman C; Howarth AJ; Rochefort A; 39995385
PHYSICS
3 Synthesis, Characterization and Photophysical Properties of a New Family of Rare-earth Cluster-based Metal-organic Frameworks Bicalho HA; Copeman C; Barbosa HP; Donnarumma PR; Davis Z; Quezada-Novoa V; Velazquez-Garcia JJ; Liu N; Hemmer E; Howarth AJ; 39105655
CHEMBIOCHEM
4 The Effect of Linker-to-Metal Energy Transfer on the Photooxidation Performance of an Isostructural Series of Pyrene-Based Rare-Earth Metal-Organic Frameworks Quezada-Novoa V; Titi HM; Villanueva FY; Wilson MWB; Howarth AJ; 37116124
CHEMBIOCHEM
5 Remodelling a shp: Transmetalation in a Rare-Earth Cluster-Based Metal-Organic Framework Bicalho HA; Donnarumma PR; Quezada-Novoa V; Titi HM; Howarth AJ; 34314164
CHEMBIOCHEM
6 Rare-earth metal-organic frameworks: from structure to applications. Saraci F, Quezada-Novoa V, Donnarumma PR, Howarth AJ 32658241
CHEMBIOCHEM

 

Title:Identification of Adsorption Sites for CO2 in a Series of Rare-Earth and Zr-Based Metal-Organic Frameworks
Authors:Tassé DQuezada-Novoa VCopeman CHowarth AJRochefort A
Link:https://pubmed.ncbi.nlm.nih.gov/39995385/
DOI:10.1002/cphc.202401050
Publication:Chemphyschem : a European journal of chemical physics and physical chemistry
Keywords:DFT, GCMC, CO2 adsorption, MOF, isotherms
PMID:39995385 Category: Date Added:2025-02-25
Dept Affiliation: PHYSICS
1 Polytechnique Montréal: Polytechnique Montreal, Engineering Physics, CANADA.
2 Concordia University, Chemistry, CANADA.
3 Polytechnique Montreal, C.P. 6079, succ. Centre-ville, H3C 3A7, Montreal, CANADA.

Description:

The adsorption of CO2 in MOF-808, NU-1000 and a series of rare-earth CU-10 analogues has been studied with first principles DFT and classical Monte-Carlo methods. DFT calculations describe the interaction of CO2 with the different metal-organic frameworks (MOFs) as physisorption, but where we can distinguish several adsorption sites in the vicinity of the metal nodes. Beyond the identification of adsorption sites, the MOFs were synthesized, activated, and characterized to evaluate their experimental N2 and CO2 adsorption capacity. Classical Grand Canonical Monte-Carlo (GCMC) simulations for the adsorption of CO2 are in very good agreement with DFT results for identifying the most favored adsorption sites in the MOFs. In contrast, a rather mixed agreement between GCMC simulations and experimental results is found for the estimation of adsorption capacity {of several MOFs studied toward N2 and CO2.





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