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Updated: Mar 31, 2026

CO2 Photoreduction to CH4 Performance Under Concentrating Solar Light
Published on: June 12, 2019
Surface Stabilization of High-Pressure TiO2 Polymorph via High-Energy Ball Milling: Boosting Noble-Metal-Free CO2
Abigail Mufari1, Thiago Capelupi2, Martin Saleta3,4,5
1Instituto de Investigaciones en Tecnología Química (INTEQUI), UNSLCONICET, Almirante Brown 1455, 5700 San Luis, Argentina.
Abstract:
High-energy ball milling (HEBM) is employed to stabilize the high-pressure TiO2-II polymorph as nanocrystallites anchored to anatase surfaces, producing a controllable polymorphic mixture that markedly enhances CO2 photoreduction to CH3OH in aqueous media without noble metals or cocatalysts. The resulting architecture features TiO2-II intimately interfaced with strained anatase and a high density of extended defects (grain boundaries, phase interfaces, and dislocation terminations) hosting reactive surface species with modified electronic properties. This defect-rich configuration provides high-affinity CO2 adsorption and activation sites. Both bulk and surface are profoundly restructured under the extreme nonequilibrium conditions of HEBM, which reproduce high-pressure transformation pathways at ambient conditions. These results highlight a green, scalable strategy for defect and polymorph engineering in TiO2, enabling targeted surface chemistry design to improve photocatalytic CO2 conversion.

