首页> 外文期刊>Chemical engineering journal >Two-dimensional highly oxidized ilmenite nanosheets equipped with Z-scheme heterojunction for regulating tumor microenvironment and enhancing reactive oxygen species generation
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Two-dimensional highly oxidized ilmenite nanosheets equipped with Z-scheme heterojunction for regulating tumor microenvironment and enhancing reactive oxygen species generation

机译:二维高度氧化的钛铁矿纳米片,配备Z形方案异质结来调节肿瘤微环境和增强活性氧物种产生

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摘要

Excessive reactive oxygen species (ROS), as effective cancer therapeutic agents, can promote tumor apoptosis. However, the clinical applications of ROS-mediated cancer therapies still have many limitations, such as self-defects of traditional photosensitizer, adverse tumor microenvironment (TME), and insufficient ROS production. Here, two-dimensional and highly oxidized ilmenite nanosheets (HOIL NSs, formula: FeTiO3@Fe2O3), one of perovskite analogues, were developed through combining ball-milling, probe sonication assisted liquid exfoliation, and probe sonication assisted surface oxidation. The HOIL NSs with surface oxidized Fe2O3 shell and FeTiO3 core cleverly developed a direct Z-scheme heterojunction, in which much stronger oxidation and reduction potentials in the valence band (VB) of Fe2O3 and the conduction band (CB) of FeTiO3 respectively were obtained via recombining the electrons in the CB of Fe2O3 with the holes in the VB of FeTiO3. Under irradiation of 650 nm laser, the generation of O-center dot(2)- from O-2 and center dot OH from OH- on the CB of FeTiO3 and VB of Fe2O3, respectively, were enhanced largely. Besides, the Fe2O3 shell and Fe3+/Fe2+ inside HOIL NSs can not only damage the TME through glutathione consumption and O-2 production, but also produce center dot OH by Fenton reaction. Moreover, the NSs can be triggered by an 808 nm laser to generate local hyperthermia for photothermal therapy. The fluorescent and photothermal imaging capabilities of the HOIL-PEG NSs also allow dual-modal imaging-guided cancer therapy.
机译:过多的活性氧(ROS),作为有效的癌症治疗剂,可以促进肿瘤凋亡。然而,ROS介导的癌症疗法的临床应用仍然具有许多限制,例如传统光敏剂,不良肿瘤微环境(TME)的自我缺陷,并且ROS生产不足。这里,通过组合球磨,探针超声处理辅助液体去角质和探针超声处理辅助表面氧化,通过组合射线和高度氧化的髂镁纳米烯片(Hoil NSS,公式:FetiO3 @ Fe2O3),探针超声辅助表面氧化。具有表面氧化Fe2O3壳和FetiO3核心的Hoil NSS巧妙地开发了一种直接Z形方案的异质结,其中Fe 2 O 3的无氧化率(Vb)中的氧化和降低电位和FETIO3的导电带(CB)的氧化和降低电位较大将Fe2O3的CB中的电子与FetiO3的VB中的孔重组。在650nm激光照射的情况下,从O-2和中心点OH分别从O-2和中央点OH的产生分别在很大程度上增强了FE2O3的CB和Fe 2 O 3的Cb。此外,Fe2O3壳和Fe3 + / Fe2 +内部渗透NSS不能通过谷胱甘肽消费和O-2生产损坏TME,还可以通过Fenton反应生产中心点哦。此外,NSS可以由808nm激光器触发,以产生局部热疗以进行光热疗法。 HOIL-PEG NSS的荧光和光热成像能力也允许双型成像引导癌症治疗。

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