Mars-van-Krevelen mechanism-based blackening of nano-sized white semiconducting oxides for synergetic solar photo-thermocatalytic degradation of dye pollutants.

Nanoscale

Key Lab of Materials Physics, Anhui Key Lab of Nanomaterials and Nanotechnology, Institute of Solid State Physics, Chinese Academy of Sciences, Hefei 230031, P.R. China. and University of Science and Technology of China, Hefei 230026, PR China.

Published: February 2020

Blackening (or enhancing the optical absorption in the visible region) of nano-sized white semiconducting oxides (N-WSOs) is of significant importance for solar utilization. Here, we present a novel Mars-van-Krevelen mechanism-based method for blackening the N-WSOs via facile one-step heating of the N-WSOs with alcohols. Taking n-butanol-induced blackening of TiO (anatase) as an example, the pristine TiO NP powders can be successfully blackened to form black TiO (B-TiO) via heating with n-butanol at 300 °C for 20 min. Technical analyses demonstrate that the B-TiO nanocrystals are wrapped with a 2 nm thick disordered layer, which is rich in oxygen vacancies, Ti and hydroxyl groups. Both theoretical and experimental results show that B-TiO has much stronger optical absorption in the visible region than pristine TiO. Furthermore, the influence factors (including heating temperatures and alcohol types) and good universality of this blackening method are also demonstrated. A blackening principle based on Mars-van-Krevelen mechanism-induced oxygen vacancy generation and hydroxylation-anchoring of oxygen vacancies has been proposed, and the mechanism can well explain all the phenomena observed in experiments. Importantly, such B-TiO shows hugely enhanced activity in solar photodegradation of dye pollutants. Under simulated solar irradiation, the degradation rate constant achieved by the B-TiO catalyst is 2.3 times that of the pristine TiO, showing an obvious enhancement. Further experiments reveal that the improved degradation activity is mainly attributed to the enhanced optical absorption in the visible region and the synergistic photothermal and photocatalytic effect. This study demonstrates a new and facile approach to blacken the N-WSOs for enhanced solar utilization.

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Source
http://dx.doi.org/10.1039/c9nr09534aDOI Listing

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