Pal Nabanita, Chakraborty Debabrata, Cho Eun-Bum, Seo Jeong Gil
Department of Physics and Chemistry, Mahatma Gandhi Institute of Technology, Gandipet, Hyderabad 500075, India.
Institute for Applied Chemistry, Department of Fine Chemistry, Seoul National University of Science and Technology, Seoul 01811, Republic of Korea.
Nanomaterials (Basel). 2023 Jul 26;13(15):2184. doi: 10.3390/nano13152184.
Nanoscopic materials have demonstrated a versatile role in almost every emerging field of research. Nanomaterials have come to be one of the most important fields of advanced research today due to its controllable particle size in the nanoscale range, capacity to adopt diverse forms and morphologies, high surface area, and involvement of transition and non-transition metals. With the introduction of porosity, nanomaterials have become a more promising candidate than their bulk counterparts in catalysis, biomedicine, drug delivery, and other areas. This review intends to compile a self-contained set of papers related to new synthesis methods and versatile applications of porous nanomaterials that can give a realistic picture of current state-of-the-art research, especially for catalysis and sensor area. Especially, we cover various surface functionalization strategies by improving accessibility and mass transfer limitation of catalytic applications for wide variety of materials, including organic and inorganic materials (metals/metal oxides) with covalent porous organic (COFs) and inorganic (silica/carbon) frameworks, constituting solid backgrounds on porous materials.
纳米材料在几乎每一个新兴研究领域都展现出了多方面的作用。由于其在纳米尺度范围内可控的粒径、能够呈现多种形式和形态、具有高比表面积以及涉及过渡金属和非过渡金属,纳米材料已成为当今先进研究中最重要的领域之一。随着孔隙率的引入,纳米材料在催化、生物医学、药物递送及其他领域比其块状材料更具潜力。本综述旨在汇编一组自成体系的论文,内容涉及多孔纳米材料的新合成方法和广泛应用,从而真实呈现当前的前沿研究现状,特别是在催化和传感器领域。尤其值得一提的是,我们通过改善各种材料(包括具有共价多孔有机(COF)和无机(二氧化硅/碳)骨架的有机和无机材料(金属/金属氧化物))催化应用的可及性和传质限制,涵盖了各种表面功能化策略,为多孔材料奠定了坚实基础。