Liu Zhiwei, Wang Jingjing, Dong Shanghai, Wang Liying, Li Lu, Cao Zhenzhu, Zhang Yongfeng, Cheng Lin, Yang Jucai
School of Chemical Engineering, Inner Mongolia University of Technology, Inner Mongolia Key Laboratory of Theoretical and Computational Chemistry Simulation, National & Local Joint Engineering Research Center of High-Value Utilization of Coal-Based Solid Waste, Institute of Coal Conversion and Cyclic Economy, Hohhot, 010051, People's Republic of China.
School of Chemical Engineering, Inner Mongolia University of Technology, Inner Mongolia Key Laboratory of Theoretical and Computational Chemistry Simulation, National & Local Joint Engineering Research Center of High-Value Utilization of Coal-Based Solid Waste, Institute of Coal Conversion and Cyclic Economy, Hohhot, 010051, People's Republic of China.
Ultrason Sonochem. 2024 Jul;107:106912. doi: 10.1016/j.ultsonch.2024.106912. Epub 2024 May 17.
The United Nations' Sustainable Development Goals (SDGs) are significant in guiding modern scientific research. In recent years, scholars have paid much attention to MOFs materials as green materials. However, piezo catalysis of MOFs materials has not been widely studied. Piezoelectric materials can convert mechanical energy into electrical energy, while MOFs are effective photocatalysts for removing pollutants. Therefore, it is crucial to design MOFs with piezoelectric properties and photosensitivity. In this study, sulfur-functionalized metal-organic frameworks (S-MOFs) were prepared using organic sulfur-functionalized ligand (HTDC) ultrasonic synthesis to enhance their piezoelectric properties and visible light absorption. The study demonstrated that the S-MOFs significantly enhanced the reduction of a 10 mg/L solution of hexavalent chromium to 99.4 % within 10 min, using only 15 mg of catalyst. The orbital energy level differences of the elements were analyzed using piezo response force microscopy (PFM) and X-ray photoelectron spectroscopy (XPS). The results showed that MOFs functionalized with sulfur atom ligands have a built-in electric field that facilitates charge separation and migration. This study presents a new approach to enhance the piezoelectric properties of MOFs, which broadens their potential applications in piezo catalysis and piezo-photocatalysis. Additionally, it provides a sustainable method for reducing hexavalent chromium, contributing to the achievement of sustainable development goals, specifically SDG-6, SDG-7, SDG-9, and SDG-12.
联合国可持续发展目标(SDGs)对指导现代科学研究具有重要意义。近年来,学者们十分关注金属有机框架材料(MOFs)作为绿色材料。然而,MOFs材料的压电催化尚未得到广泛研究。压电材料可将机械能转化为电能,而MOFs是去除污染物的有效光催化剂。因此,设计具有压电性能和光敏性的MOFs至关重要。在本研究中,使用有机硫官能化配体(HTDC)超声合成法制备了硫官能化金属有机框架(S-MOFs),以增强其压电性能和可见光吸收。研究表明,仅使用15mg催化剂,S-MOFs就能在10分钟内将10mg/L的六价铬溶液的还原率显著提高到99.4%。利用压电响应力显微镜(PFM)和X射线光电子能谱(XPS)分析了元素的轨道能级差异。结果表明,用硫原子配体官能化的MOFs具有内建电场,有利于电荷分离和迁移。本研究提出了一种增强MOFs压电性能的新方法,拓宽了其在压电催化和压电光催化方面的潜在应用。此外,它还提供了一种还原六价铬的可持续方法,有助于实现可持续发展目标,特别是可持续发展目标6、7、9和12。