Understanding the Structural and Electronic Properties of Photoactive Tungsten Oxide Nanoparticles from Density Functional Theory and GW Approaches
Author(s) -
Valentín DiezCabanes,
Ángel MoralesGarcía,
Francesc Illas,
Mariachiara Pastore
Publication year - 2021
Publication title -
journal of chemical theory and computation
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.001
H-Index - 185
eISSN - 1549-9626
pISSN - 1549-9618
DOI - 10.1021/acs.jctc.1c00293
Subject(s) - density functional theory , tungsten trioxide , materials science , nanotechnology , nanoparticle , nanostructure , photocatalysis , semiconductor , nanoscopic scale , electronic structure , tungsten , computational chemistry , chemistry , optoelectronics , biochemistry , metallurgy , catalysis
Tungsten trioxide (WO 3 )-derived nanostructures have emerged recently as feasible semiconductors for photocatalytic purposes due to their visible-light harvesting that overcomes the drawbacks presented by TiO 2 -derived nanoparticles (NPs). However, applications are still limited by the lack of fundamental knowledge at the nanoscale due to poor understanding of the physical processes that affect their photoactivity. To fill this gap, we report here a detailed computational study using a combined density functional theory (DFT)- GW scheme to investigate the electronic structure of realistic WO 3 NPs containing up to 1680 atoms. Different phases and morphologies are considered to provide reliable structure-property relationships. Upon proper benchmark of our DFT- GW methodology, we use this highly accurate approach to establish relevant rules for the design of photoactive WO 3 nanostructures by pointing out the most stable morphologies at the nanoscale and the appropriate size regime at which the photoactive efficiency is enhanced.
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