2025/04/10 by Jose Obrero‐Perez, Obrero-Perez, Jose M., Gloria P. Moreno-Martinez +22 · 1 voice
Materials Science · #Transition Metal Oxide Nanomaterials #Ga2O3 and related materials #ZnO doping and properties
paper · pdf · doi:10.1021/acsami.5c07264
openalex publication_date 2025/09/22 · openalex created_date 2025/09/23 · openalex updated_date 2026/08/01
High Resolution Image Download MS PowerPoint Slide Vanadium dioxide (VO 2 ) is a thermochromic material that undergoes a phase transition from a monoclinic semiconducting state to a rutile metallic state at 68 °C, a temperature close to room temperature. This property makes VO 2 particularly valuable in applications such as optical and electrical switches, data storage, neuromorphic computing, and remarkably dynamic smart windows for solar radiation control. VO 2 typically needs to be synthesized for these applications as nanostructured thin films. Over the past few decades, significant efforts have been made to control the thermochromic properties of VO 2 through crystal structure tuning, doping, and the development of VO 2 nanocomposites. Additionally, introducing nano- and mesoporosity has been shown to enhance the optical properties of thermochromic VO 2 films. This study presents a methodology for producing highly porous, aerogel-like V 2 O 5 films, which can be thermally processed to form aerogel-like VO 2 films. This process is based on sequential plasma polymerization and plasma etching to produce aerogel-like V 2 O 5 films that are annealed to yield ultraporous nanocrystalline VO 2 films. The sacrificial vanadium-containing plasma polymers are obtained by remote plasma-assisted vacuum deposition (RPAVD) using vanadyl porphyrin as a precursor and Ar as plasma gas. Additional reference compact films VO 2 films are obtained by a direct RPAVD process using the same precursor and oxygen plasmas in combination with thermal annealing. The aerogel-like VO 2 films show exceptional thermochromic performance with luminous transmittances higher than 54%, solar modulation up to 18.8%, and IR modulation up to 35.5%. The presented plasma methodology is versatile, allowing both the synthesis of VO 2 plasmonic structures to enhance the thermochromic response and the encapsulation of films to improve their stability in air dramatically. Additionally, this solvent-free synthetic method is fully compatible with doping procedures, scalable, and holds great potential for designing and optimizing smart window coatings.