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利用 Au 尖端的 CoFe 铁磁纳米线进行纳米加热。

Nanowarming using Au-tipped CoFe ferromagnetic nanowires.

机构信息

Department of Chemical Engineering & Materials Science, University of Minnesota Twin Cities, Minneapolis, MN 55455, USA.

出版信息

Nanoscale. 2019 Aug 8;11(31):14607-14615. doi: 10.1039/c9nr01182j.

Abstract

Ferromagnetic Co35Fe65, Fe, Co, and Ni nanowires have high saturation magnetizations (Ms) and magnetic anisotropies, making them ideal for magnetic heating in an alternating magnetic field (AMF). Here, Au-tipped nanowires were coated with polyethylene glycol (PEG) and specific absorption rates (SAR) were measured in glycerol. SAR increased when using metals with increasing Ms (Co35Fe65 > Fe > Co > Ni), reaching 1610 ± 20 W g-1 metal at 1 mg metal per ml glycerol for Co35Fe65 nanowires using 190 kHz and 20 kA m-1. Aligning these nanowires parallel to the AMF increased SAR up to 2010 W g-1 Co35Fe65. Next, Co35Fe65 nanowires were used to nanowarm vitrified VS55, a common cryoprotective agent (CPA).Nanowarming rates up to 1000 °C min-1 (5 mg Co35Fe65 per ml VS55) were achieved, which is 20× faster than the critical warming rate (50 °C min-1) for VS55 and other common CPAs. Human dermal fibroblast cells exposed to VS55, and Co35Fe65 nanowire concentrations of 0, 1 and 2.5 mg Fe per ml all showed similar cell viability, indicating that the nanowires had minimal cytotoxicity. With the ability to provide rapid and uniform heating, ferromagnetic nanowires have excellent potential for nanowarming cryopreserved tissues.

摘要

铁磁性 Co35Fe65、Fe、Co 和 Ni 纳米线具有高饱和磁化强度(Ms)和磁各向异性,使其成为交变磁场(AMF)中磁加热的理想选择。在这里,金尖端纳米线涂有聚乙二醇(PEG),并在甘油中测量比吸收率(SAR)。当使用 Ms 增加的金属时,SAR 会增加(Co35Fe65 > Fe > Co > Ni),在 190 kHz 和 20 kA m-1 下,每毫升甘油 1 毫克金属时,Co35Fe65 纳米线的 SAR 达到 1610 ± 20 W g-1 金属。将这些纳米线平行于 AMF 排列可将 SAR 提高到 2010 W g-1 Co35Fe65。接下来,Co35Fe65 纳米线用于纳米加热常见的冷冻保护剂(CPA)VS55。实现了高达 1000°C min-1 的纳米升温速率(每毫升 VS55 5 毫克 Co35Fe65),这是 VS55 和其他常见 CPA 的关键升温速率(50°C min-1)的 20 倍。暴露于 VS55 和 Co35Fe65 纳米线浓度为 0、1 和 2.5 mg Fe/ml 的人真皮成纤维细胞均表现出相似的细胞活力,表明纳米线具有最小的细胞毒性。具有提供快速和均匀加热的能力,铁磁性纳米线在纳米加热冷冻保存组织方面具有极好的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6df4/6709862/34530d35e837/nihms-1042081-f0001.jpg

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