Madankar Rohit S, Bhilkar Pavan, Raish Mohammad, Potbhare Ajay, Norek Małgorzata, Somkuwar Subhash, Daddemal-Chaudhary Ankita, Mondal Aniruddha, Chaudhary Ratiram
Post Graduate Department of Chemistry, Seth Kesarimal Porwal College of Arts and Science and Commerce, Kamptee, Rashtrasant Tukadoji Maharaj Nagpur University, Nagpur, Maharashtra, 441001, India.
Department of Pharmaceutics, College of Pharmacy, King Saud University, Riyadh, 11451, Saudi Arabia.
Sci Rep. 2025 Jul 1;15(1):21179. doi: 10.1038/s41598-025-03229-8.
This study reports a green, cost-effective synthesis of ZnO/rGO nanocomposites (NCs) using Conyza bonariensis leaf extract as a novel bio-reducing agent. The nanocomposites were prepared via a simple hydrothermal method. Extensive characterization techniques including XRD, FT-IR, EDS, UV-DRS, XPS, BET, SEM, TEM, and AFM were employed to evaluate the crystallite size, phase structure, chemical composition, surface morphology, porosity, and particle size of the synthesized material. XRD analysis confirmed the formation of a hexagonal wurtzite ZnO phase with an average crystallite size of approximately 17.22 nm, calculated using the Debye-Scherrer equation. SEM revealed a distinctive "tuberose flower"-like morphology of ZnO particles distributed on the reduced graphene oxide (rGO) sheets, with flower diameters ranging from 1 to 2 μm and petal widths of 40-70 nm. Further, TEM supported the uniform distribution of ZnO tubular petals on graphene nanosheets. BET analysis demonstrated the mesoporous nature of NCs. Remarkably, the bioinspired ZnO/rGO NCs exhibited excellent photocatalytic activity under visible-light irradiation, effectively degrading industrial dyes such as Congo red (CR), Methylene blue (MB), and Thymol blue (TB). The enhanced photocatalytic performance is attributed to the nanocomposites' unique scaffold-like architecture, increased light absorption, and efficient charge separation.
本研究报道了一种绿色、经济高效的合成ZnO/rGO纳米复合材料(NCs)的方法,该方法使用牛膝菊叶提取物作为新型生物还原剂。通过简单的水热法制备了纳米复合材料。采用了包括XRD、FT-IR、EDS、UV-DRS、XPS、BET、SEM、TEM和AFM在内的多种表征技术,以评估合成材料的微晶尺寸、相结构、化学成分、表面形态、孔隙率和粒径。XRD分析证实形成了六方纤锌矿ZnO相,使用Debye-Scherrer方程计算得出平均微晶尺寸约为17.22 nm。SEM显示,ZnO颗粒在还原氧化石墨烯(rGO)片上呈现出独特的“晚香玉花”状形态,花直径为1至2μm,花瓣宽度为40 - 70 nm。此外,TEM支持了ZnO管状花瓣在石墨烯纳米片上的均匀分布。BET分析表明NCs具有介孔性质。值得注意的是,受生物启发的ZnO/rGO NCs在可见光照射下表现出优异的光催化活性,能有效降解刚果红(CR)、亚甲基蓝(MB)和百里酚蓝(TB)等工业染料。光催化性能的增强归因于纳米复合材料独特的支架状结构、增加的光吸收和有效的电荷分离。