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具有优异磁热效率的稳定氧化铁纳米花:简单快速的多元醇合成。

Stable Iron Oxide Nanoflowers with Exceptional Magnetic Heating Efficiency: Simple and Fast Polyol Synthesis.

机构信息

Biophysics Group, Department of Physics and Astronomy, University College London, London WC1E 6BT, United Kingdom.

UCL Healthcare Biomagnetics and Nanomaterials Laboratories, 21 Albemarle Street, London W1S 4BS, United Kingdom.

出版信息

ACS Appl Mater Interfaces. 2021 Sep 29;13(38):45870-45880. doi: 10.1021/acsami.1c12323. Epub 2021 Sep 20.

Abstract

Magnetically induced hyperthermia has reached a milestone in medical nanoscience and in phase III clinical trials for cancer treatment. As it relies on the heat generated by magnetic nanoparticles (NPs) when exposed to an external alternating magnetic field, the heating ability of these NPs is of paramount importance, so is their synthesis. We present a simple and fast method to produce iron oxide nanostructures with excellent heating ability that are colloidally stable in water. A polyol process yielded biocompatible single core nanoparticles and nanoflowers. The effect of parameters such as the precursor concentration, polyol molecular weight as well as reaction time was studied, aiming to produce NPs with the highest possible heating rates. Polyacrylic acid facilitated the formation of excellent nanoheating agents iron oxide nanoflowers (IONFs) within 30 min. The progressive increase of the size of the NFs through applying a seeded growth approach resulted in outstanding enhancement of their heating efficiency with intrinsic loss parameter up to 8.49 nH m kg. The colloidal stability of the NFs was maintained when transferring to an aqueous solution via a simple ligand exchange protocol, replacing polyol ligands with biocompatible sodium tripolyphosphate to secure the IONPs long-term colloidal stabilization.

摘要

磁致热疗在医学纳米科学领域取得了里程碑式的进展,目前正处于癌症治疗的 III 期临床试验阶段。磁致热疗依赖于磁性纳米粒子 (NPs) 在外部交变磁场中产生的热量,因此这些 NPs 的加热能力至关重要,其合成方法也是如此。我们提出了一种简单快速的方法来制备具有优异加热能力且在水中胶体稳定的氧化铁纳米结构。多元醇法合成了具有生物相容性的单核心纳米粒子和纳米花。研究了前驱体浓度、多元醇分子量以及反应时间等参数的影响,旨在制备具有尽可能高的加热速率的 NPs。通过 30 分钟的时间,聚丙烯酸促进了优异的纳米加热剂氧化铁纳米花 (IONFs) 的形成。通过种子生长法逐渐增大 NF 的尺寸,从而显著提高其加热效率,固有损耗参数高达 8.49 nH m kg。通过简单的配体交换法将 NF 转移到水溶液中,用生物相容性的三聚磷酸钠取代多元醇配体,以确保 IONPs 的长期胶体稳定性,从而保持了 NF 的胶体稳定性。

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