Tarannum Nazia, Gautam Yogendra K
Department of Chemistry, Chaudhary Charan Singh University Meerut 250004 India
Smart Materials and Sensor Laboratory, Department of Physics, Chaudhary Charan Singh University Meerut 250004 India.
RSC Adv. 2019 Oct 29;9(60):34926-34948. doi: 10.1039/c9ra04164h. eCollection 2019 Oct 28.
In the field of nanotechnology, the development of reliable and eco-friendly methods for the synthesis of NPs is crucial. The conventional methods for the synthesis of NPs are costly, toxic, and not ecofriendly. To overcome these issues, natural sources such as plant, bacteria, fungi, and biopolymers have been used to synthesize AgNPs. These natural sources act as reducing and capping agents. The shape, size, and applications of AgNPs are prominently affected by the reaction parameters under which they are synthesized. Accessible distributed data on the synthesis of AgNPs include the impact of different parameters (temperature and pH), characterization techniques (DLS, UV-vis, FTIR, XRD, SEM, TEM and EDX), properties and their applications. This review paper discusses all the natural sources such as plants, bacteria, fungi, and biopolymers that have been used for the synthesis of AgNPs in the last ten years. AgNPs synthesized by green methods have found potential applications in a wide spectrum of areas including drug delivery, DNA analysis and gene therapy, cancer treatment, antimicrobial agents, biosensors, catalysis, SERS and magnetic resonance imaging (MRI). The current limitations and future prospects for the synthesis of inorganic nanoparticles by green methods are also discussed herein.
在纳米技术领域,开发可靠且环保的纳米粒子合成方法至关重要。传统的纳米粒子合成方法成本高、有毒且不环保。为克服这些问题,植物、细菌、真菌和生物聚合物等天然来源已被用于合成银纳米粒子。这些天然来源充当还原剂和封端剂。银纳米粒子的形状、大小和应用受到其合成时反应参数的显著影响。关于银纳米粒子合成的可获取的分布式数据包括不同参数(温度和pH值)的影响、表征技术(动态光散射、紫外可见光谱、傅里叶变换红外光谱、X射线衍射、扫描电子显微镜、透射电子显微镜和能谱分析)、性质及其应用。这篇综述论文讨论了过去十年中用于合成银纳米粒子的所有天然来源,如植物、细菌、真菌和生物聚合物。通过绿色方法合成的银纳米粒子已在广泛领域找到潜在应用,包括药物递送、DNA分析和基因治疗、癌症治疗、抗菌剂、生物传感器、催化、表面增强拉曼光谱和磁共振成像。本文还讨论了绿色方法合成无机纳米粒子的当前局限性和未来前景。