Key Laboratory of Superlight Materials & Surface Technology of Ministry of Education, Harbin Engineering University, Harbin, 150001, PR China.
Key Laboratory of Superlight Materials & Surface Technology of Ministry of Education, Harbin Engineering University, Harbin, 150001, PR China.
Chemosphere. 2023 Dec;343:140285. doi: 10.1016/j.chemosphere.2023.140285. Epub 2023 Sep 26.
Construction of S-scheme heterojunction is an efficient strategy to enhance photocatalytic efficiency. Besides the retained redox ability, the wide work function gap and intimate interface contact are essential for efficient degradation. Nontoxic magnesium oxide (MgO) with two dimensional (2D) structures and high work function is a potential material for S-scheme photocatalysts. Herein, MgO was used to in-situ grown on graphitic carbon nitride (g-CN) for constructing the strongly connected MgO/g-CN S-scheme photocatalyst with tight Mg-N bonds. Meanwhile, the presence of Mg-N bonds induces the formation of oxygen vacancy in MgO, which enhances the Fenton-like degradation. Furthermore, the Mg-N bond promotes the charge migration between MgO and g-CN. Consisting of the enhanced Fenton-like process and photocatalysis, the MgO/g-CN shows a higher photo-Fenton degradation activity (80.01%) for degradation of organic pollutants (Rhodamine B, 100 mg L) in water, than g-CN (28.46%) and MgO (55.64%). Therefore, the interfacial chemical bonds in heterojunction photocatalysts provide an efficient strategy for further enhancing the photocatalysis of S-scheme photocatalysts.
构建 S 型异质结是提高光催化效率的有效策略。除了保留的氧化还原能力外,宽的功函数间隙和紧密的界面接触对于高效降解也是必不可少的。无毒的具有二维(2D)结构和高功函数的氧化镁(MgO)是 S 型光催化剂的潜在材料。在此,将 MgO 原位生长在石墨相氮化碳(g-CN)上,构建了具有紧密 Mg-N 键的强连接 MgO/g-CN S 型光催化剂。同时,Mg-N 键的存在诱导了 MgO 中氧空位的形成,从而增强了类 Fenton 降解。此外,Mg-N 键促进了 MgO 和 g-CN 之间的电荷迁移。由增强的类 Fenton 过程和光催化组成,MgO/g-CN 在水中对有机污染物(罗丹明 B,100mg/L)的光-Fenton 降解活性(80.01%)高于 g-CN(28.46%)和 MgO(55.64%)。因此,异质结光催化剂中的界面化学键为进一步提高 S 型光催化剂的光催化性能提供了一种有效的策略。