Physically synthesized Ni-Cu nanoparticles for magnetic hyperthermia.

Martin Bettge, Jhunu Chatterjee, Yousef Haik
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引用次数: 45

Abstract

BACKGROUND: In this paper, a physical method to prepare copper-nickel alloy particles in the sub-micron range for possible self controlled magnetic hyperthermia treatment of cancer is described. It is reported that an increase in tumor temperature decreases the tumor resistance to chemo- and radiation therapies. Self controlled heating at the tumor site to avoid spot heating is managed by controlling the Curie temperature of the magnetic particles. The process described in this paper to produce the nanomagnetic particles allows for a large scale production of these particles. METHODS: The process used here is mainly composed of melting of the Cu-Ni mixture and ball milling of the resulted bulk alloy. Both mechanical abrasion and continuous grinding were used to break down the bulk amount into the desired particle size. RESULTS: It was found that the desired alloy is composed of 71% nickel and 29% copper by weight. It was observed that the coarse sand-grinded powder has a Curie temperature of 345 K and the fine ball-milled powder shows a temperature of 319 K - 320 K. CONCLUSION: Self regulating magnetic hyperthermia can be achieved by synthesizing nanomagnetic particles with desired Curie temperature. In this study the desired range of Curie temperatures was obtained by combination of melting and ball milling of nickel-copper alloy.

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物理合成用于磁热疗的Ni-Cu纳米颗粒。
背景:本文描述了一种制备亚微米范围内铜镍合金颗粒的物理方法,该方法可能用于癌症的自我控制磁热疗。据报道,肿瘤温度升高会降低肿瘤对化疗和放疗的耐药性。通过控制磁性粒子的居里温度,实现了肿瘤部位的自控加热,避免了局部加热。本文描述的生产纳米磁性颗粒的工艺允许大规模生产这些颗粒。方法:本文采用的工艺主要由铜镍混合物熔化和球磨得到的大块合金组成。采用机械磨损和连续研磨两种方法将物料分解成所需的粒度。结果:所制备的合金由71%的镍和29%的铜组成。粗砂磨粉的居里温度为345 K,细球磨粉的居里温度为319 ~ 320 K。结论:通过合成具有居里温度的纳米磁性粒子,可以实现自调节磁热疗。本研究采用熔炼和球磨相结合的方法,获得了理想的居里温度范围。
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