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用于卓越微波热效应的FeO@APNs介电与磁性复合材料

Dielectric and Magnetic Composites of FeO@APNs for Superior Microwave Thermal Effect.

作者信息

Zhan Yan-Lei, Wen Kai-Chao, Li Zheng-An, Sun Ping, Li Feng-Qian

机构信息

Department of Orthopaedics/Pharmaceutics, Shanghai Eighth People's Hospital, Shanghai 200235, China.

School of Pharmacy, Fudan University, Shanghai 201203, China.

出版信息

ACS Biomater Sci Eng. 2024 Feb 12;10(2):791-799. doi: 10.1021/acsbiomaterials.3c01341. Epub 2023 Dec 28.

Abstract

As for the deep tissue infections of chronic osteomyelitis, antibiotics are hard to deliver into the infected bone tissue, which makes it difficult to be cured completely in clinic. Microwave has strong penetration, and the medium can produce a good bactericidal effect through the microwave thermal effect (MTE). Here, a new microwave sensitizer (FeO@APNs) was prepared and evaluated. Black phosphorus nanosheets modified with phytic acid dodecasodium (APNs) were fabricated by a liquid-phase exfoliation method that exhibited good water oxygen stability. A complex with FeO compound and APNs (FeO@APNs) was formed by an ultrasonic mixing process, which showed excellent MTE (quickly increased to 53.5 °C in 5 min at 2.45 GHz, 10 W/cm) via dielectric versus magnetic loss (reflect loss value of -5.94 dB at 2.45 GHz). The FeO@APNs microwave sensitizer developed in this study has an outstanding in vitro antibacterial effect and might show promise for the treatment of chronic osteomyelitis enabled by local tissue heating via the MTE.

摘要

对于慢性骨髓炎的深部组织感染,抗生素难以输送到感染的骨组织中,这使得临床上难以完全治愈。微波具有很强的穿透力,介质可通过微波热效应(MTE)产生良好的杀菌效果。在此,制备并评估了一种新型微波敏化剂(FeO@APNs)。通过液相剥离法制备了用植酸十二钠(APNs)修饰的黑磷纳米片,其具有良好的水氧稳定性。通过超声混合过程形成了FeO化合物与APNs的复合物(FeO@APNs),其通过介电与磁损耗(在2.45 GHz时反射损耗值为-5.94 dB)表现出优异的微波热效应(在2.45 GHz、10 W/cm下5分钟内迅速升至53.5°C)。本研究开发的FeO@APNs微波敏化剂具有出色的体外抗菌效果,并且可能有望通过微波热效应实现局部组织加热来治疗慢性骨髓炎。

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