Sahu Muskan, Singh Somesh, Prajapati Satypal, Verma Dinesh K, Shin Dong Kil
Materials Laboratory, School of Mechanical Engineering, Yeungnam University 280 Daehak-ro Gyeongsan-si Gyeongsanbuk-do 38541 Republic of Korea
Department of Chemistry, Prof. Rajendra Singh (Rajju Bhaiya) Institute of Physical Sciences for Study and Research, V.B.S. Purvanchal University Jaunpur-222003 India
RSC Adv. 2024 Oct 17;14(45):32733-32758. doi: 10.1039/d4ra05872k.
Deciphering the importance of nanostructures in advanced technologies for a broad application spectrum has far-reaching implications for humans and the environment. Cost-effective, abundant cobalt oxide nanoparticles (NPs) are among the most attractive and extensively utilized materials in biomedical sciences due to their high chemical stability, and biocompatibility. However, the methods used to develop the NPs are hazardous for human health and the environment. This article precisely examines diverse green synthesis methods employing plant extracts and microbial sources, shedding light on their mechanism, and eco-friendly attributes with more emphasis on biocompatible properties accompanied by their challenges and avenues for further research. An in-depth analysis of the synthesized cobalt oxide NPs by various characterization techniques reveals their multifaceted functionalities including cytotoxicity, larvicidal, antileishmanial, hemolytic, anticoagulating, thrombolytic, anticancer and drug sensing abilities. This revelatory and visionary article helps researchers to contribute to advancing sustainable practices in nanomaterial synthesis and illustrates the potential of biogenically derived cobalt oxide NPs in fostering green and efficient technologies for biomedical applications.
解读纳米结构在具有广泛应用范围的先进技术中的重要性,对人类和环境具有深远影响。具有成本效益且储量丰富的氧化钴纳米颗粒(NPs)因其高化学稳定性和生物相容性,成为生物医学科学中最具吸引力且应用广泛的材料之一。然而,用于制备这些纳米颗粒的方法对人类健康和环境有害。本文详细研究了采用植物提取物和微生物来源的多种绿色合成方法,阐明了其作用机制和生态友好特性,更着重探讨了其生物相容性以及面临的挑战和进一步研究的方向。通过各种表征技术对合成的氧化钴纳米颗粒进行深入分析,揭示了它们的多方面功能,包括细胞毒性、杀幼虫、抗利什曼原虫、溶血、抗凝、溶栓、抗癌和药物传感能力。这篇具有启发性和前瞻性的文章有助于研究人员推动纳米材料合成的可持续实践,并展示了生物源氧化钴纳米颗粒在促进生物医学应用的绿色高效技术方面的潜力。