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Phase and morphological control of MoO3-x nanostructures for efficient cancer theragnosis therapy

机译:MoO3-x阶段和形态控制为有效的癌症theragnosis纳米结构治疗

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Nanostructures of metal oxide semiconductors play significant roles in a variety of areas, such as biotherapy, pollutant treatment and energy storage and conversion. The molybdenum oxide (MoO3-x) nanostructures have shown promising applications especially when used as photothermal treatment agents due to their relatively low cost, facile synthesis and low toxicity. However, the design and synthesis of efficient MoO3-x nanomaterials with tunable phases and morphologies for theragnosis of tumors remains a challenge. In this work, hydrophilic MoO3-x with controlled structures and phases was synthesized by a simple one-step hydrothermal process. The as-obtained MoO2 nanoclusters showed a desirable size of similar to 40 nm in diameter exhibiting unique properties as a theragnosis nanoplatform: (1) strong near-infrared absorption, which is due to oxygen vacancies of the nanoclusters, as proved by photoluminescence spectroscopy and X-ray photoelectron spectroscopy; (2) excellent photothermal performance with a photothermal conversion efficiency of up to 62.1%; and (3) the image response of X-ray computed tomography (CT) and infrared thermal imaging for simultaneous diagnosis of tumors. This study provided the facile synthetic strategy for controllable metal oxide semiconductors and promoted the development of metal oxides for theragnosis therapy of cancers.
机译:纳米结构的金属氧化物半导体重要的角色在不同的领域,如生物疗法、污染物处理和能源存储和转换。(MoO3-x)纳米结构显示有前途尤其是作为光热光谱分析应用治疗药物由于其相对较低成本、简单的合成和低毒性。的设计和合成高效MoO3-x用可调阶段和纳米材料形态的theragnosis肿瘤仍然是一个挑战。控制结构和合成阶段通过一个简单的一步水热过程。适用于MoO2发光显示可取的大小类似于40 nm直径展出独特的属性作为theragnosis nanoplatform:(1)近红外强吸收,这是由于氧空位的制备光致发光光谱和证明x射线光电子能谱学;光热光谱分析与光热光谱分析性能转换效率高达62.1%;图像x射线计算机断层扫描(CT)的反应同时和红外热成像肿瘤的诊断。温和的合成策略可控的金属氧化物半导体和促进了发展theragnosis疗法的金属氧化物癌症。

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