生物医学应用金属纳米颗粒绿色合成的各种机理综述

IF 1.1 Q3 CHEMISTRY, MULTIDISCIPLINARY
Deepti Verma, A. Prabhakar, S. Jaiswal, Nimisha Roy, Amar Dhwaj
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引用次数: 0

摘要

由于所使用的化学物质的有害影响,绿色化学取代了涉及纳米技术的传统技术。绿色化学是一门涉及微生物学、植物学和化学工程的科学分支,通过控制这三个领域来开发产品。绿色合成是一个跨学科的领域,它依赖于使用无毒的、生物安全的试剂,这些试剂是生态友好的,可以安全地用于生物纳米技术,并提供环境效益,作为开发技术的传统物理和化学方法之外的一种选择。本文将批判性地介绍利用细菌、真菌、酵母、古细菌、病毒、藻类等微生物合成纳米颗粒的各种途径和方法。通过实验室条件优化,可以合成具有不同物理特性范围的纳米颗粒。具有明确性质的纳米颗粒已被报道通过绿色化学合成,用于许多生物医学应用。纳米颗粒的绿色合成具有无毒、环保、可用于医疗程序等特点,纳米颗粒的形成速度和大小可受pH、温度、浓度、暴露时间等多种控制因素调节。微生物合成纳米颗粒的用途可以大致分为细胞内和细胞外,这是基于它们是由微生物的提取物产生的,在细胞产生的酶存在的情况下,它们可以用作细胞外或细胞内合成的还原剂或保护剂。本文主要综述了Au、P、Ag、Pt、CdS、Pt、ZnO等纳米粒子的研究进展。此外,还简要介绍了化学-生物混合方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Review on the Various Mechanisms of Green Synthesis of Metal Nanoparticles for Biomedical Applications
Due to the hazardous effects of chemicals used, Green chemistry replaces the conventional techniques involved in nanotechnology. Green chemistry is the branch of science dealing with microbiology, phytology, and chemical engineering with the development of products by manipulating these three domains. Green synthesis is an interdisciplinary domain that relies on the use of non-toxic, bio-safe reagents, which are eco-friendly and safe to use in bio-nanotechnology and provide environmental benefits as an option other than the conventional physical and chemical methods for developing technology. This article will critically present the various approaches and methods for nanoparticle synthesis using microorganisms like bacteria, fungi, yeasts, archaea, viruses, algae, etc. By optimizing with laboratory conditions, nanoparticles of different range of physical characteristics can be synthesized. Nanoparticles with well-defined properties have been reported to be synthesized by green chemistry, for many biomedical applications. Green synthesis of nanoparticles is non-toxic, eco-friendly, and compatible to be used for medicals procedure, and the rate of nanoparticle formation and their size could be regulated by various controlling factors like pH, temperature, concentration, time exposure, etc. The use of microbes for nanoparticle synthesis can be divided broadly into intracellular and extracellular based on their being produced from the extracts of microorganisms, which can be employed either as reducing agents or protective agents for the synthesis either extracellular or intracellular in the presence of enzymes generated by cells. This review aims to summarize nanoparticles of Au, P, Ag, Pt, CdS, Pt ZnO etc via as the primary focus. Additionally, a short glimpse often hybrid chemical-biological methods have also been presented.
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来源期刊
Current Green Chemistry
Current Green Chemistry CHEMISTRY, MULTIDISCIPLINARY-
CiteScore
4.30
自引率
13.60%
发文量
6
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