Bury Dominika, Jakubczak Michał, Purbayanto Muhammad Abiyyu Kenichi, Wojciechowska Anita, Moszczyńska Dorota, Jastrzębska Agnieszka Maria
Faculty of Materials Science and Engineering, Warsaw University of Technology, Wołoska 141, Warsaw, 02-507, Poland.
Small Methods. 2023 Aug;7(8):e2201252. doi: 10.1002/smtd.202201252. Epub 2023 Mar 6.
Two-dimensional MXenes are excellent photocatalysts. However, their low oxidation stability makes controlling photocatalytic processes challenging. For the first time, this work elucidates the influence of the oxidation stabilization of model 2D Ti C T MXene on its optical and photocatalytic properties. The delaminated MXene is synthesized via two well-established approaches: hydrofluoric acid/tetramethylammonium hydroxide (TMAOH-MXene) and minimum intensive layer delamination with hydrochloric acid/lithium fluoride (MILD-MXene) and then stabilized by L-ascorbic acid. Both MXenes at a minimal concentration of 32 mg L show almost 100% effectiveness in the 180-min photocatalytic decomposition of 25 mg L model methylene blue and bromocresol green dyes. Industrial viability is achieved by decomposing a commercial textile dye having 100 times higher concentration than that of model dyes. In such conditions, MILD-MXene is the most efficient due to less wide optical band gap than TMAOH-MXene. The MILD-MXene required only few seconds of UV light, simulated white light, or 500 nm (cyan) light irradiation to fully decompose the dye. The photocatalytic mechanism of action is associated with the interplay between surface dye adsorption and the reactive oxygen species generated by MXene under light irradiation. Importantly, both MXenes are successfully reused and retained approximately 70% of their activity.
二维MXenes是优异的光催化剂。然而,它们较低的氧化稳定性使得控制光催化过程具有挑战性。这项工作首次阐明了模型二维Ti C T MXene的氧化稳定性对其光学和光催化性能的影响。通过两种成熟的方法合成了剥离的MXene:氢氟酸/四甲基氢氧化铵(TMAOH-MXene)和盐酸/氟化锂的最小强化层剥离(MILD-MXene),然后用L-抗坏血酸进行稳定处理。两种MXenes在最低浓度为32 mg/L时,对25 mg/L的模型亚甲基蓝和溴甲酚绿染料在180分钟的光催化分解中显示出几乎100%的效率。通过分解浓度比模型染料高100倍的商业纺织染料实现了工业可行性。在这种条件下,由于MILD-MXene的光学带隙比TMAOH-MXene窄,所以它是最有效的。MILD-MXene仅需几秒钟的紫外光、模拟白光或500 nm(青色)光照射就能完全分解染料。光催化作用机制与表面染料吸附和MXene在光照下产生的活性氧物种之间的相互作用有关。重要的是,两种MXenes都成功实现了重复使用,并保留了约70%的活性。