4.8 Article

Ultrathin Molybdenum Carbide MXene with Fast Biodegradability for Highly Efficient Theory-Oriented Photonic Tumor Hyperthermia

Journal

ADVANCED FUNCTIONAL MATERIALS
Volume 29, Issue 22, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adfm.201901942

Keywords

biodegradability; cancer therapy; Mo2C MXene; nanomedicine; photothermal conversion

Funding

  1. National Key R&D Program of China [2016YFA0203700]
  2. Postdoctoral Science Foundation of China [2018M630475]
  3. National Science Foundation for Young Scientists of China [51802336]
  4. National Nature Science Foundation of China [51672303, 51722211]
  5. Program of Shanghai Academic Research Leader [18XD1404300]

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The explosion of emerging high-performance 2D MXenes in theranostic nanomedicine is still at the preliminary stage. Despite tremendous efforts devoted to photonic tumor hyperthermia, current photothermal-conversion nanoagents still suffer from critical issues preventing further clinical translation such as low biodegradability. Here, for the first time, the construction of novel 2D molybdenum carbide (Mo2C) MXenes for photonic tumor hyperthermia is reported. The structure of both bulk Mo2Ga2C ceramic and Mo2C MXene is fully revealed. Especially, computational simulation, as a novel strategy and a powerful tool for photonic-performance prediction, is employed to reveal that Mo2C MXene is featured with intense near-infrared (NIR) absorption, covering the first and the second biological transparency window (NIR I and II). After further surface engineering with polyvinyl alcohol (PVA), Mo2C-PVA nanoflakes exhibit high biocompatibility and fast degradability. Importantly, it is experimentally corroborated that Mo2C-PVA nanoflakes possess intriguing broad absorption band spanning NIR in both the I and II regions, and desirable photothermal-conversion efficiency (24.5% for NIR I and 43.3% for NIR II). This study not only broadens the nanomedical applications of MXene by fabricating novel material members (Mo2C), but also provides the paradigm of inorganic multifunctional biomedical nanoplatform with desirable biodegradability and high therapeutic performance.

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