School of Science, Jiangnan University, Wuxi, 214122, P. R. China.
School of Science, Jiangnan University, Wuxi, 214122, P. R. China; National Laboratory of Solid State Microstructures, Nanjing University, Nanjing, 210093, P. R. China.
J Colloid Interface Sci. 2025 Jan 15;678(Pt B):1169-1180. doi: 10.1016/j.jcis.2024.09.112. Epub 2024 Sep 14.
The MnO/CN S-scheme heterojunctions were prepared using the hydrothermal method, which significantly promoted periodate (PI) activation for the TC removal. Notably, the MnO/CN-0.1 achieved a TC removal rate of 79.7 % within 25 min in the PI/Vis system, which was 1.39 and 3.68 times that of MnO and g-CN, respectively. The improved TC degradation performance could be attributed to the synergetic effect of photothermal effect of MnO and the S-scheme heterojunction. On the basis of the infrared thermography images, the photothermal properties of MnO could increase temperatures of the reaction system, leading to the promotion of the PI activation. The formation of the MnO/CN S-scheme not only effectively suppressed charge recombination, but also facilitated the Mn(IV)/Mn(III) redox cycle within the reaction. Under different pH and anion conditions, the MnO/CN-0.1/PI system exhibited excellent capability in TC removal. Additionally, the toxicity of the degraded solution was evaluated based on the LC-MS test results and the growth experiment of Mung bean seeds. This work put forward an efficient approach on S-scheme photothermal catalysts to achieve efficient utilization of PI on TC degradation, which demonstrates a promising method for photothermal assistance PI activation to remediate the water environment efficiently.
MnO/CN S 型异质结是通过水热法制备的,这显著促进了高碘酸盐(PI)对 TC 的活化。值得注意的是,MnO/CN-0.1 在 PI/Vis 体系中 25 min 内实现了 79.7%的 TC 去除率,分别是 MnO 和 g-CN 的 1.39 倍和 3.68 倍。MnO/CN-0.1 对 TC 降解性能的提高可归因于 MnO 的光热效应和 S 型异质结的协同作用。基于红外热成像图像,MnO 的光热特性可以提高反应体系的温度,从而促进 PI 的活化。MnO/CN S 型异质结的形成不仅有效抑制了电荷复合,而且促进了反应中 Mn(IV)/Mn(III)的氧化还原循环。在不同的 pH 值和阴离子条件下,MnO/CN-0.1/PI 体系表现出优异的 TC 去除能力。此外,还根据 LC-MS 测试结果和绿豆种子生长实验评估了降解溶液的毒性。这项工作提出了一种有效的 S 型光热催化剂方法,实现了 PI 在 TC 降解中的高效利用,为光热辅助 PI 活化高效修复水环境提供了一种有前景的方法。