生物可降解废弃物萃取物绿色合成纳米颗粒及其应用

Hari Krishna Ponduru, Chandra Sekhara Rao Gurubilli, Sowmya Mudunuru, Dileepu Kumar Banisetti
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引用次数: 2

摘要

纳米粒子已经成为从技术到医药和环境等先进工业的重要组成部分。然而,纳米颗粒的合成会影响它们在实际应用中有效发挥作用的能力,这可能会导致负面后果。这种新颖的方法利用了监管、控制、清理和补救等过程,旨在提高这些基本颗粒的环保水平。通过减少传统纳米粒子合成过程中产生的有害副产品,将会产生更少毒性的不可持续产品。使用有机系统等自然资源将有助于实现创造更环保和更可持续经济的目标;但是,采用这些替代办法将需要工业援助。金属纳米颗粒可以通过利用植物替代品或细菌、真菌、藻类和植物提取物等生物材料,以更可持续和“绿色”的方式合成。这种更环保的方法可以是一步或“一锅”过程,比传统过程需要更低的能量水平。另一个好处是,这种减少方法更具成本效益。绿色合成纳米颗粒具有临床应用价值。纳米银对金黄色葡萄球菌的抑菌活性达到峰值。用作药物载体的纳米颗粒具有高度稳定性,可以结合疏水和亲水物质,并且可以通过多种途径递送,包括口服和吸入。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Green synthesis of nano particles from biodegradable waste extracts and their applications
Nanoparticles have become a significant component of advancing industries from technology to medicine and the environment. However, the synthesis of nanoparticles can impact their ability to function effectively within real-world applications, and this can cause negative consequences. This novel approach that utilizes processes such as regulation, control, clean-up, and remediation aims to increase the eco-friendly level of these essential particles. By reducing harmful by-products produced through the process of conventional nanoparticle synthesis, there will be less toxic unsustainable products created. The use of natural resources such as organic systems will aid in achieving the goal of creating a greener and more sustainable economy; however, it will require industrial assistance with the adoption of these alternative approaches. Metallic nanoparticles can be synthesized in a more sustainable and ‘green’ process through utilizing plant alternatives or biological materials such as bacteria, fungi, algae, and plant extracts. This greener approach can be a single step or ‘one pot’ process which requires a lower energy level than conventional processes. Another benefit is that this reduction method is more cost-efficient. Green-synthesized nanoparticles have clinical applications. When silver nanoparticles were treated against S. aureus, their antibacterial activity was at its peak. Nanoparticles used as drug carriers are highly stable, can incorporate both hydrophobic and hydrophilic substances, and can be delivered via a variety of routes also including oral application and inhalation.
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