2026/06/16 by Yuehan Cao, Chuan Huang, Yi Li +6
Chemical Engineering · Engineering · Energy · #Catalysis and Oxidation Reactions #Chemical Looping and Thermochemical Processes #TiO2 Photocatalysis and Solar Cells
paper · doi:10.1021/jacs.6c06804
Solar-driven direct conversion of methane (CH 4 ) and water to formaldehyde (HCHO) offers a sustainable route for hydrocarbon production under mild conditions. However, thermodynamic parallels between HCHO and methanol (CH 3 OH) formation limit product selectivity. Using titanium dioxide (TiO 2 ), we have engineered symmetry-breaking sites to overcome this constraint. The studies reveal that symmetry-breaking sites generate surface hole-trapping states, enabling rapid hole migration (∼8 ps). This process combines with adsorbed hydroxyl groups to produce hydroxyl radicals ( • OH), which cleave titanium–oxygen (Ti–O) bonds in methoxy intermediates. The resulting methoxy radicals ( • OCH 3 ) drive a single-step pathway that entirely bypasses CH 3 OH formation, achieving 93.7% HCHO selectivity with HCHO accounting for 100% of liquid products. In sharp contrast, symmetric sites follow a two-step pathway involving substantial CH 3 OH coproduction via slower electron transfer (>4 ns), yielding only ∼42.8% HCHO selectivity. This work demonstrates a breakthrough in sustainable HCHO production, with symmetry-breaking site engineering commandeering photoinduced charge dynamics to eliminate selectivity barriers.