Faculty of Chemical Engineering, Ho Chi Minh City University of Food Industry, 140 Le Trong Tan, Ho Chi Minh City, 70000, Viet Nam.
Faculty of Chemical Engineering, Industrial University of Ho Chi Minh City, Ho Chi Minh City, 70000, Viet Nam.
Chemosphere. 2022 Jan;287(Pt 3):132271. doi: 10.1016/j.chemosphere.2021.132271. Epub 2021 Sep 16.
In this study, novel biogenic silver (AgNPs) and gold nanoparticles (AuNPs) were developed using a green approach with Ganoderma lucidum (GL) extract. The optimization of synthesis conditions for the best outcomes was conducted. The prepared materials were characterized and their applicability in catalysis, antibacterial and chemical sensing was comprehensively evaluated. The GL-AgNPs crystals were formed in a spherical shape with an average diameter of 50 nm, while GL-AuNPs exhibited multi-shaped structures with sizes ranging from 15 to 40 nm. As a catalyst, the synthesized nanoparticles showed excellent catalytic activity (>98% in 9 min) and reusability (>95% after five recycles) in converting 4-nitrophenol to 4-aminophenol. As an antimicrobial agent, GL-AuNPs were low effective in inhibiting the growth of bacteria, while GL-AgNPs expressed strong antibacterial activity against all the tested strains. The highest growth inhibition activity of GL-AgNPs was observed against B. subtilis (14.58 ± 0.35 mm), followed by B. cereus (13.8 ± 0.52 mm), P. aeruginosa (12.38 ± 0.64 mm), E. coli (11.3 ± 0.72 mm), and S. aureus (10.41 ± 0.31 mm). Besides, GL-AgNPs also demonstrated high selectivity and sensitivity in the colorimetric detection of Fe in aqueous solution with a detection limit of 1.85 nM. Due to the suitable thickness of the protective organic layer and the appropriate particle size, GL-AgNPs validated the triple role as a high-performance catalyst, antimicrobial agent, and nanosensor for environmental monitoring and remediation.
在这项研究中,使用灵芝 (GL) 提取物通过绿色方法开发了新型生物衍生银 (AgNPs) 和金纳米粒子 (AuNPs)。对最佳结果的合成条件进行了优化。对制备的材料进行了表征,并全面评估了它们在催化、抗菌和化学传感中的应用。GL-AgNPs 晶体呈球形,平均直径为 50nm,而 GL-AuNPs 则呈现出 15 至 40nm 尺寸的多种形状结构。作为催化剂,合成的纳米粒子在将 4-硝基苯酚转化为 4-氨基酚的反应中表现出优异的催化活性 (>98%在 9 分钟内) 和可重复使用性 (>95%在五次循环后)。作为一种抗菌剂,GL-AuNPs 对细菌的生长抑制作用较低,而 GL-AgNPs 对所有测试菌株均表现出强烈的抗菌活性。GL-AgNPs 对枯草芽孢杆菌的最高生长抑制活性为 14.58±0.35mm,其次是蜡状芽孢杆菌 (13.8±0.52mm)、铜绿假单胞菌 (12.38±0.64mm)、大肠杆菌 (11.3±0.72mm) 和金黄色葡萄球菌 (10.41±0.31mm)。此外,GL-AgNPs 在水溶液中对 Fe 的比色检测也表现出高选择性和灵敏度,检测限为 1.85nM。由于具有适当厚度的保护性有机层和合适的粒径,GL-AgNPs 验证了其作为高性能催化剂、抗菌剂和纳米传感器在环境监测和修复中的三重作用。