单宁酸
光热治疗
纳米颗粒
氧化铁纳米粒子
化学
氧化物
氧化铁
纳米材料
材料科学
表面电荷
纳米技术
化学工程
有机化学
工程类
物理化学
作者
Te-Wei Chang,Han Seo Ko,Wei-Shiang Huang,Yi‐Chun Chiu,Li‐Xing Yang,Zi‐Chun Chia,Yu‐Cheng Chin,Ya‐Jyun Chen,Yi‐Tseng Tsai,Che-Wei Hsu,Chia‐Ching Chang,Pei‐Jane Tsai,Chih‐Chia Huang
标识
DOI:10.1016/j.cej.2021.131237
摘要
• Green approach for nano-phase transformation from γ-Fe 2 O 3 to Fe 3 O 4 by tannic acid. • Gram-level yield and the high NIR photothermal conversion (η = 35.7%) in Fe 3 O 4 NPs. • Improved absorption with the interfacial charge transfer between polyphenol and iron. • Efficient sterilization by heat through bacterial FimH adhesion. • Recyclable photothermal bactericide for medical/environmental microorganism control. An iron oxide (Fe 3 O 4 )-mediated photothermal treatment has been revealed as the next generation of noninvasive and nontoxic theranostic nanoagents compared with other inorganic nanoparticles. Nevertheless, iron oxide with NIR-mediated activity is limited by its inability to be mass produced and its long-lasting photon-to-thermal conversion. Herein, we develop using a green reagent, tannic acid (TNA), which assisted hydrothermal reaction to generate black Fe 3 O 4 nanoparticles by using commercially available nanoptical γ-Fe 2 O 3 NPs as a starting material. The phase transformation from γ-Fe 2 O 3 to the reduced form of Fe 3 O 4 is assisted by TNA in the solution phase. Based on the formation of the interfacial TNA-Fe chelation and the delicate phase transformation from γ-Fe 2 O 3 to Fe 3 O 4 structures, the colloidal black Fe 3 O 4 nanoparticles exhibit broad absorption that covers the visible and NIR wavelengths. Specific interfacial ligand-to-metal charge transfers between the TNA and iron ions at the surface of iron oxide nanoparticles, improves the absorbance and leads to the highest photon-to-thermal conversion (η = 35.7%) at 808 nm compared with other iron oxide nanomaterials. After modifying d-mannose (MA) onto the surface of the Fe 3 O 4 @TNA nanoparticles, the local heat can efficiently transfer from the Fe 3 O 4 @TNA nanoparticles to the vicinity of the bacterial FimH adhesion molecule, causing extensive photothermal injury to O157:H7 and ESBL strain bacteria with over 99% cell death at 200 ppm [Fe] with 808 nm light at 2.25 mW/cm 2 . Based on its robust photostability, Fe 3 O 4 @TNA@MA shows photothermal bactericidal recyclability through magnetic collection, adhesion, and photothermal processes.
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