论文标题
单磁铁矿纳米颗粒的磁化切换受到光学监测的
Magnetization Switching of Single Magnetite Nanoparticles Monitored Optically
论文作者
论文摘要
磁性纳米材料的记录信息与计算机记忆中的Picseconds一样快,但在古代岩石中保留了数百万年的信息。通过温度,超快的光学激发进行磁化或磁化操纵,机械应力或微波炉,通过势能屏障跳过势能屏障,涵盖了这种极为广泛的时间。由于切换取决于纳米颗粒的大小,形状,方向和材料特性,因此只有单纳米颗粒研究才能消除集成异质性。在这里,我们将光热磁圆二色性的灵敏度推向单个20 nm磁铁矿纳米颗粒。单粒子磁化曲线表现出超顺磁对铁磁行为,具体取决于大小,形状和方向。一些纳米颗粒会在毫秒至分钟的时间尺度上进行热激活的开关。令人惊讶的是,转换屏障似乎随着时间而变化,导致动态异质性。我们的观察结果将有助于识别并最终控制影响磁性纳米颗粒切换的纳米级参数,这是许多领域应用的重要步骤。
Magnetic nanomaterials record information as fast as picoseconds in computer memories but retain it for millions of years in ancient rocks. This exceedingly broad range of times is covered by hopping over a potential energy barrier through temperature, ultrafast optical excitation for demagnetization or magnetization manipulation, mechanical stress, or microwaves. As switching depends on nanoparticle size, shape, orientation, and material properties, only single-nanoparticle studies can eliminate ensemble heterogeneity. Here, we push the sensitivity of photothermal magnetic circular dichroism down to individual 20-nm magnetite nanoparticles. Single-particle magnetization curves display superparamagnetic to ferromagnetic behaviors, depending on size, shape, and orientation. Some nanoparticles undergo thermally activated switching on time scales of milliseconds to minutes. Surprisingly, the switching barrier appears to vary in time, leading to dynamical heterogeneity. Our observations will help to identify and eventually control the nanoscale parameters influencing the switching of magnetic nanoparticles, an important step for applications in many fields.