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Hydrophilic Molybdenum Oxide Nanomaterials with Controlled Morphology and Strong Plasmonic Absorption for Photothermal Ablation of Cancer Cells

机译:具有控制形态和强等离子体吸收能力的亲水性氧化钼纳米材料用于癌细胞的光热消融

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The molybdenum oxide nanosheets have shown strong localized surface plasmon resonance (LSPR) absorption in the near-infrared (NIR) region. However, the long alky chains of ligands made them hydrophobic and less biocompatible. To meet the requirements of molybdenum based nanomaterials for use as a future photothermal therapy, a simple hydrothermal route has been developed for hydrophilic molybdenum oxide nanospheres and nanoribbons using a molybdenum precursor and poly(ethylene glycol) (PEG). First, molybdenum oxide nanomaterials prepared in the presence of PEG exhibit strong localized surface plasmon resonance (LSPR) absorption in near-infrared (NIR) region, compared with that of no PEG. Second, elevation of synthetic temperature leads to a gradual transformation of molybdenum oxide nanospheres into nanoribbons, entailing the evolution of an intense LSPR absorption in the NIR region. Third, as-prepared molybdenum oxide nanomaterials coated with PEG possess a hydrophilic property and thus can be directly used for biological applications without additional post treatments. Moreover, molybdenum oxide nanoribbons as a model of photothermal materials can efficiently convert the 980 nm wavelength laser energy into heat energy, and this localized hyperthermia produces the effective thermal ablation of cancer cells, meaning a potential photothermal material.
机译:氧化钼纳米片在近红外(NIR)区域显示出强烈的局部表面等离子体共振(LSPR)吸收。但是,配体的长烷基链使其具有疏水性且生物相容性较差。为了满足用作未来光热疗法的钼基纳米材料的要求,已经开发了一种简单的水热途径,用于使用钼前体和聚乙二醇(PEG)的亲水性氧化钼纳米球和纳米带。首先,与没有PEG相比,在PEG存在下制备的氧化钼纳米材料在近红外(NIR)区域表现出较强的局部表面等离子体共振(LSPR)吸收。第二,合成温度的升高导致氧化钼纳米球逐渐转变为纳米带,这需要在近红外区域内强烈地吸收LSPR。第三,涂覆有PEG的制备的氧化钼纳米材料具有亲水性,因此可以直接用于生物学应用而无需额外的后处理。此外,作为光热材料模型的氧化钼纳米带可以有效地将980 nm波长的激光能量转换为热能,而这种局部高温会有效地消融癌细胞,这意味着潜在的光热材料。

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