School of Advanced Chemical Sciences, Shoolini University, Solan, Himachal Pradesh, 173212, India.
Department of Environmental Science and Engineering, School of Engineering and Sciences, SRM University-AP, Amaravati, Andhra Pradesh, 522240, India.
Environ Res. 2024 Oct 15;259:119575. doi: 10.1016/j.envres.2024.119575. Epub 2024 Jul 8.
NH-functionalized metal-organic frameworks (NH-functionalized MOFs) can abate organic pollutants, predominantly favored by their chemical, mechanical, and thermal stabilities. The present review stated the chemistry of identifying NH-functionalization and its role in enhancing the properties of bare MOFs. The integration of the amine group bestows several advantages: 1.) enabling band structure modification, 2.) establishing strong metal-NH bonds, 3.) preserving MOF structures from reactive oxygen species, and 4.) shielding MOF structures against pH alterations. Consequently, the NH-functionalized MOFs are promising materials for the photodegradation of organic contaminants. The following section illustrates the two approaches (pre-synthetic and post-synthetic) for NH-functionalized MOFs. Nevertheless, specific intrinsic limitations, entailing a high recombination rate of charge carriers and inadequate optical adsorption, restrain the applicability of NH-functionalized MOFs. Accordingly, the succeeding segment presents strategies to elevate the photocatalytic activities of NH-functionalized MOFs via heterojunction fabrication. The importance of the NH-functionalized MOFs-based heterojunction has been evaluated in terms of the effect on the enhancement of charge separation, optical adsorption, and redox ability of charge carriers. Subsequently, the potential application for organic pollutant degradation via NH-functionalized MOFs-based heterojunctions has been scrutinized, wherein the organic pollutants. Eventually, the review concluded with challenges and potential opportunities in engaging and burgeoning domains of the NH-functionalized MOFs-based heterojunctions.
NH 功能化金属有机骨架(NH 功能化 MOF)可以消除有机污染物,主要因其化学、机械和热稳定性而受到青睐。本综述阐述了识别 NH 功能化的化学原理及其在增强裸 MOF 性能方面的作用。胺基的整合赋予了几个优点:1. 能够进行能带结构修饰;2. 建立强金属-NH 键;3. 防止 MOF 结构受到活性氧物种的影响;4. 屏蔽 MOF 结构免受 pH 变化的影响。因此,NH 功能化 MOF 是光降解有机污染物的有前途的材料。下一节说明了 NH 功能化 MOF 的两种方法(预合成和后合成)。然而,特定的内在限制,包括载流子的高复合率和不足的光吸收,限制了 NH 功能化 MOF 的适用性。因此,下一部分提出了通过制造异质结来提高 NH 功能化 MOF 的光催化活性的策略。根据对提高电荷分离、光吸收和载流子氧化还原能力的影响,评估了 NH 功能化 MOF 基异质结的重要性。随后,通过 NH 功能化 MOF 基异质结降解有机污染物的潜在应用进行了研究,其中包括有机污染物。最后,该综述以 NH 功能化 MOF 基异质结的参与和新兴领域的挑战和潜在机遇为结论。