论文标题
拥抱磁性纳米颗粒中的缺陷和无序
Embracing defects and disorder in magnetic nanoparticles
论文作者
论文摘要
氧化铁纳米颗粒在从能源应用到生物医学的广泛技术中具有巨大的科学和技术潜力。为了提高其性能,到目前为止,单晶和无缺陷的纳米颗粒已经被关注了。然而,在最近的一些研究中,富含缺陷的纳米颗粒在磁性高温和磁性粒子成像中的无缺陷范围优于其缺陷。在这里,介绍了磁性纳米颗粒的最新设计和表征以及由此导致的旋转障碍的概述,重点是氧化铁纳米颗粒。磁性纳米颗粒对药物输送和癌症治疗的细胞内磁性高温性能的有益影响被强调。在氧化铁纳米颗粒中的缺陷工程构成成为一种替代生物医学特性的替代方法,因为它在已建立的系统中已经是常见的实践,例如半导体和包括钙钛矿太阳能电池在内的新兴领域。最后,关于如何故意诱导氧化铁纳米颗粒中缺陷的观点和思想,及其对磁性示踪剂对通过磁性颗粒成像监测细胞疗法和免疫疗法的潜在影响。
Iron oxide nanoparticles have tremendous scientific and technological potential in a broad range of technologies, from energy applications to biomedicine. To improve their performance, single-crystalline and defect-free nanoparticles have thus far been aspired. However, in several recent studies defect-rich nanoparticles outperform their defect-free counterparts in magnetic hyperthermia and magnetic particle imaging. Here, an overview on the state-of-the-art of design and characterization of defects and resulting spin disorder in magnetic nanoparticles is presented with a focus on iron oxide nanoparticles. The beneficial impact of defects and disorder on intracellular magnetic hyperthermia performance of magnetic nanoparticles for drug delivery and cancer therapy is emphasized. Defect-engineering in iron oxide nanoparticles emerges to become an alternative approach to tailor their magnetic properties for biomedicine, as it is already common practice in established systems such as semiconductors and emerging fields including perovskite solar cells. Finally, perspectives and thoughts are given on how to deliberately induce defects in iron oxide nanoparticles and their potential implications for magnetic tracers to monitor cell therapy and immunotherapy by magnetic particle imaging.