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3
Biopolymers-Based Materials Containing Silver Nanoparticles as Active Packaging for Food Applications-A Review.基于生物聚合物的载银纳米粒子材料作为食品应用的活性包装——综述。
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4
Porous gold layer coated silver nanoplates with efficient antimicrobial activity.多孔金层包覆的具有高效抗菌活性的银纳米片。
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Green and cost effective synthesis of silver nanoparticles from endangered medicinal plant Withania coagulans and their potential biomedical properties.从濒危药用植物茄参中绿色、经济地合成银纳米粒子及其潜在的生物医学特性。
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利用各种生物系统合成银纳米颗粒:机制与应用——综述

Synthesis of silver nanoparticles utilizing various biological systems: mechanisms and applications-a review.

作者信息

Garg Divyanshi, Sarkar Aritri, Chand Pooja, Bansal Pulkita, Gola Deepak, Sharma Shivangi, Khantwal Sukirti, Mehrotra Rekha, Chauhan Nitin, Bharti Randhir K

机构信息

Noida Institute of Engineering and Technology, Greater Noida, Uttar Pradesh, India.

Department of Microbiology, Shaheed Rajguru College of Applied Sciences for Women, University of Delhi, Delhi, India.

出版信息

Prog Biomater. 2020 Sep;9(3):81-95. doi: 10.1007/s40204-020-00135-2. Epub 2020 Jul 11.

DOI:10.1007/s40204-020-00135-2
PMID:32654045
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7544790/
Abstract

The evolving technology of nanoparticle synthesis, especially silver nanoparticle (AgNPs) has already been applied in various fields i.e., electronics, optics, catalysis, food, health and environment. With advancement in research, it is possible to develop nanoparticles of various size, shape, morphology, and surface to volume ratio utilizing biological systems. A number of different agents and methods can be employed to develop choice based AgNPs using algae, plants, fungi and bacteria. The use of plant extracts to produce AgNPs appears to be more convenient, as the method is simple, environmental friendly and inexpensive, also requiring a single-step. The microbial synthesis of AgNps showed intracellular and extracellular mechanisms to reduce metal ions into nanoparticles. Studies have shown that different size (1-100 nm) and shapes (spherical, triangular and hexagonal etc.) of nanoparticles can be produced from various biological routes and these diverse nanoparticles have various functions and usability i.e., agriculture, medical-science, textile, cosmetics and environment protection. The present review provides an overview of various biological systems used for AgNP synthesis, its underlying mechanisms, further highlighting the current research and applications of variable shape and sized AgNPs.

摘要

纳米颗粒合成技术,尤其是银纳米颗粒(AgNPs)的不断发展,已应用于各个领域,即电子、光学、催化、食品、健康和环境。随着研究的进展,利用生物系统开发各种尺寸、形状、形态和表面积与体积比的纳米颗粒成为可能。可以采用多种不同的试剂和方法,利用藻类、植物、真菌和细菌开发基于选择的AgNPs。使用植物提取物生产AgNPs似乎更方便,因为该方法简单、环保且成本低廉,还只需一步。AgNps的微生物合成显示出细胞内和细胞外机制,可将金属离子还原为纳米颗粒。研究表明,通过各种生物途径可以生产不同尺寸(1-100nm)和形状(球形、三角形和六边形等)的纳米颗粒,这些不同的纳米颗粒具有各种功能和用途,即农业、医学、纺织、化妆品和环境保护。本综述概述了用于AgNP合成的各种生物系统及其潜在机制,进一步强调了可变形状和尺寸的AgNPs的当前研究和应用。