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Amorphous Mesoporous Magnesium Carbonate as a Functional Support for UV-Blocking Semiconductor Nanoparticles for Cosmetic Applications

机译:非晶态介孔碳酸镁作为防紫外线半导体纳米粒子在化妆品中的功能性载体

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Highly porous amorphous mesoporous magnesium carbonate (MMC) with a Brunauer–Emmett–Teller (BET) surface area over 600 m2·g–1 was evaluated as a micrometer-sized support for TiO2 and ZnO semiconductor nanoparticles. The resulting MMC-TiO2-ZnO contained 25 wt % TiO2 and 25 wt % ZnO incorporated into an MMC structure without blocking the pores as revealed by nitrogen sorption isotherms, scanning electron microscopy, and transmission electron microscopy. In vitro ultraviolet (UV) light-blocking experiments showed that the MMC-TiO2-ZnO had comparable UV-blocking ability as a TiO2 and ZnO nanoparticle mixture containing the same amount of semiconductor particles without a support. Amaranth dye degradation studies revealed that MMC was able to diminish the catalytic activity of TiO2 and ZnO nanoparticles, possibly due to the presence of free carbonate ions in MMC as well as in the dye solution. In summary, this paper demonstrated for the first time that micrometer-sized particles of the recently emerged MMC materials can be used as a support for sun-blocking semiconductor nanoparticles without compromising their UV blocking ability and with significantly lowered photocatalytic activity. When used in a formulation as a support for semiconductor nanoparticles, MMC may also reduce the risk of nanoparticle exposure, and the high porosity of MMC-TiO2-ZnO may be utilized for the delivery of therapeutic agents to the skin.
机译:Brunauer-Emmett-Teller(BET)表面积超过600 m2·g-1的高度多孔的无定形介孔碳酸镁(MMC)被评估为用于TiO2和ZnO半导体纳米粒子的微米级载体。所得的MMC-TiO 2 -ZnO包含掺入MMC结构中的25wt%的TiO 2和25wt%的ZnO,而没有阻塞孔,如氮吸附等温线,扫描电子显微镜和透射电子显微镜所揭示的。体外紫外线(UV)阻光实验表明,MMC-TiO2-ZnO具有与包含相同量的无载体的半导体粒子的TiO2和ZnO纳米粒子混合物相当的紫外线阻隔能力。 mar菜红染料降解研究表明,MMC能够降低TiO2和ZnO纳米颗粒的催化活性,这可能是由于MMC以及染料溶液中存在游离碳酸根离子所致。总之,本文首次证明了最近出现的MMC材料的微米级颗粒可以用作防晒半导体纳米颗粒的载体,而不会损害它们的紫外线阻断能力,并且光催化活性大大降低。当在制剂中用作半导体纳米颗粒的载体时,MMC还可以降低纳米颗粒暴露的风险,MMC-TiO2-ZnO的高孔隙率可用于将治疗剂输送至皮肤。

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