Yu Deyou, Xu Licong, Fu Kaixing, Liu Xia, Wang Shanli, Wu Minghua, Lu Wangyang, Lv Chunyu, Luo Jinming
Engineering Research Center for Eco-Dyeing and Finishing of Textiles (Ministry of Education), Zhejiang Sci-Tech University, Hangzhou, 310018, PR China.
School of Environmental Science and Engineering, Shanghai Jiao Tong University, Shanghai, 200240, PR China.
Nat Commun. 2024 Mar 12;15(1):2241. doi: 10.1038/s41467-024-46653-6.
Electronic structure modulation of active sites is critical important in Fenton catalysis as it offers a promising strategy for boosting HO activation. However, efficient generation of hydroxyl radicals (•OH) is often limited to the unoptimized coordination environment of active sites. Herein, we report the rational design and synthesis of iron oxyfluoride (FeOF), whose iron sites strongly coordinate with the most electronegative fluorine atoms in a characteristic moiety of F-(Fe(III)O)-F, for effective HO activation with potent •OH generation. Results demonstrate that the fluorine coordination plays a pivotal role in lowering the local electron density and optimizing the electronic structures of iron sites, thus facilitating the rate-limiting HO adsorption and subsequent peroxyl bond cleavage reactions. Consequently, FeOF exhibits a significant and pH-adaptive •OH yield (~450 µM) with high selectivity, which is 1 ~ 3 orders of magnitude higher than the state-of-the-art iron-based catalysts, leading to excellent degradation activities against various organic pollutants at neutral condition. This work provides fundamental insights into the function of fluorine coordination in boosting Fenton catalysis at atomic level, which may inspire the design of efficient active sites for sustainable environmental remediation.
活性位点的电子结构调控在芬顿催化中至关重要,因为它为促进羟基自由基(•OH)的活化提供了一种很有前景的策略。然而,羟基自由基(•OH)的高效生成往往受限于活性位点未优化的配位环境。在此,我们报道了氟氧化铁(FeOF)的合理设计与合成,其铁位点在F-(Fe(III)O)-F特征部分中与电负性最强的氟原子强烈配位,以实现有效的羟基自由基(•OH)活化并高效生成•OH。结果表明,氟配位在降低局部电子密度和优化铁位点的电子结构方面起着关键作用,从而促进了限速的羟基自由基(•OH)吸附及随后的过氧键裂解反应。因此,FeOF表现出显著且pH适应性的•OH产率(约450 µM),具有高选择性,比目前最先进的铁基催化剂高1至3个数量级,在中性条件下对各种有机污染物具有优异的降解活性。这项工作在原子水平上为氟配位在促进芬顿催化中的作用提供了基本见解,这可能会激发用于可持续环境修复的高效活性位点的设计。