光热-光催化三元异质结构在太阳能驱动下高效降解抗菌药物和灭活超级细菌中的应用

IF 4.7 Q2 MATERIALS SCIENCE, BIOMATERIALS
Kaelin Gates, Shivangee Rai, Olorunsola Praise Kolawole, Sanchita Kundu, Avijit Pramanik, Shruti Singh, Prabhat Bandari, Vishita Pandey, Deja Morehead, Rohan Alamgir, Zoe Edorodion, Tandabany Dinadayalane and Paresh Chandra Ray*, 
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引用次数: 0

摘要

很大一部分抗菌剂,如不同的抗生素,通过人类和动物的粪便排放到环境中,对生态平衡和人类健康造成了重大问题。此外,抗生素的广泛过度使用和误用导致抗生素耐药细菌(超级细菌)的产生,这是21世纪最大的全球健康问题之一。由于太阳能是光催化系统的一种丰富的自然资源,我们报道了利用等离子体金纳米颗粒(AuNP)锚定WO3纳米板(WO3 NPL)修饰还原氧化石墨烯(r-GO) (AuNP/WO3 NPL/r-GO)设计了基于光热-光催化双功能光吸收剂的三元异质结构。该材料在400 ~ 900 nm区域具有很强的吸收能力,能够在阳光下100%降解强力霉素类抗生素。本研究表明,由于异质结构中AuNP和r-GO具有优异的光热性能,在785 NIR nm光照射下,局部温度升高,通过增强“热载体”的转移和活性氧(ROS)的形成,促进了强力霉素类抗生素的光催化降解反应动力学。此外,实验数据表明,通过整合光热-光催化材料,光照80 min后,阳光可以100%降解强力霉素抗生素。此外,我们证明了三元异质结构可以用于碳青霉烯抗性肠杆菌科大肠杆菌(CRE E. coli)和耐甲氧西林金黄色葡萄球菌(MRSA)超级细菌的100%阳光灭活,只需将它们暴露在光下60分钟。本研究为构建光热辅助光催化三元异质结构以高效降解抗生素和超级细菌提供了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Photothermal–Photocatalytic Ternary Heterostructure for Solar Light-Driven Highly Efficient Degradation of Antimicrobial Agents and Inactivation of Superbugs

Photothermal–Photocatalytic Ternary Heterostructure for Solar Light-Driven Highly Efficient Degradation of Antimicrobial Agents and Inactivation of Superbugs

A significant proportion of antimicrobial agents, such as different antibiotics discharged into the environment via human and animal waste, poses significant problems for ecological balance and human health. Moreover, widespread overuse and misuse of antibiotics have led to antibiotic-resistant bacteria (superbugs), which is one of the biggest global health problems in the 21st century. Since the utilization of solar energy, which is an abundant and natural resource for the photocatalytic system, we report the design of a photothermal–photocatalytic dual-functional light absorber-based ternary heterostructure using plasmonic gold nanoparticle (AuNP)-anchored WO3 nanoplatelet (WO3 NPL)-decorated reduced graphene oxide (r-GO) (AuNP/WO3 NPL/r-GO), which exhibits strong absorption between 400 and 900 nm regions and has the capability for the sunlight-driven 100% degradation of doxycycline antibiotics. Herein, we show that due to the excellent photothermal performance of AuNP and r-GO in the heterostructure, the local temperature increased under 785 NIR nm light irradiation, which boosted the photocatalytic degradation reaction kinetics for doxycycline antibiotics via enhancing the transfer of “hot carriers” and the formation of reactive oxygen species (ROS). Furthermore, experimental data indicate that by integrating photothermal–photocatalytic materials, sunlight can be used for 100% doxycycline antibiotic degradation after 80 min of light irradiation. Moreover, we demonstrate that the ternary heterostructure can be used for sunlight-based 100% inactivation of carbapenem-resistant Enterobacteriaceae Escherichia coli (CRE E. coli) and methicillin-resistant Staphylococcus aureus (MRSA) superbugs by just exposing them to light for 60 min. This study sheds light on the construction of photothermally assisted photocatalytic ternary heterostructures for high-efficiency sunlight-driven degradation of antibiotics and superbugs.

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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
期刊介绍: ACS Applied Bio Materials is an interdisciplinary journal publishing original research covering all aspects of biomaterials and biointerfaces including and beyond the traditional biosensing, biomedical and therapeutic applications. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrates knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important bio applications. The journal is specifically interested in work that addresses the relationship between structure and function and assesses the stability and degradation of materials under relevant environmental and biological conditions.
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