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Nanoparticle Shape Influences the Magnetic Response of Ferro-Colloids

机译:纳米粒子形状会影响铁胶体的磁响应

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fThe interesting magnetic response of conventional ferro-colloid has proved extremely useful in a wide range of technical applications. Furthermore, the use of nano/micro-sized magnetic particles has proliferated cutting-edge medical research, such as drug targeting and hyperthermia. In order to diversify and improve the application of such systems, new 5 avenues of functionality must be explored. Current efforts focus on incorporating directional interactions that are surplus to the intrinsic magnetic one. This additional directionality can be 1 conveniently introduced by considering systems composed of Magnetic particles of different shapes. Here we present a combined analytical and simulation study of permanently magnetized dipolar superball particles; a geometry that closely resembles magnetic cubes synthesized in experiments. We have focused on determining the initial magnetic susceptibility Of these particles in dilute suspensions, seeking to quantify the effect of the superball shape parameter on the system response. In turn, we linked the computed susceptibilities to the system microstructure by analyzing cluster compOsition using a connectivity network analysis. Our study has shown that by increasing the shape parameter of these superball particles, one can alter the outcome of self-assembly processes, leading to the observation of an unanticipated decrease in the initial static magnetic susceptibility.
机译:传统铁胶体的有趣磁响应已经证明在广泛的技术应用中非常有用。此外,使用纳米/微尺寸的磁性颗粒具有增殖的尖端医学研究,例如药物靶向和热疗。为了使这些系统的应用多样化和改进,必须探索新的5个功能途径。目前的努力专注于将定向相互作用融为于内在磁性的方向相互作用。通过考虑由不同形状的磁性颗粒组成的系统,可以通过考虑由不同形状的磁性颗粒组成的系统来方便地引入这种额外的方向性。在这里,我们介绍了永久磁化的偶极颗粒的组合分析和仿真研究;几何形状与实验中合成的磁性立方体紧密相似。我们专注于确定这些颗粒在稀释悬浮液中的初始磁化率,寻求量化超球形参数对系统响应的影响。反过来,我们通过使用连接网络分析分析群集组合来将计算的敏感性与系统微结构联系起来。我们的研究表明,通过增加这些超级球粒子的形状参数,可以改变自组装过程的结果,从而观察初始静态磁化率的意外降低。

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