Lavorato Gabriel C, Das Raja, Alonso Masa Javier, Phan Manh-Huong, Srikanth Hariharan
Instituto de Investigaciones Fisicoquímicas Teóricas y Aplicadas (INIFTA-CONICET), Universidad Nacional de La Plata 1900 La Plata Argentina
Faculty of Materials Science and Engineering and Phenikaa Institute for Advanced Study (PIAS), Phenikaa University Hanoi 10000 Vietnam.
Nanoscale Adv. 2021 Jan 15;3(4):867-888. doi: 10.1039/d0na00828a. eCollection 2021 Feb 23.
Heating at the nanoscale is the basis of several biomedical applications, including magnetic hyperthermia therapies and heat-triggered drug delivery. The combination of multiple inorganic materials in hybrid magnetic nanoparticles provides versatile platforms to achieve an efficient heat delivery upon different external stimuli or to get an optical feedback during the process. However, the successful design and application of these nanomaterials usually require intricate synthesis routes and their magnetic response is still not fully understood. In this review we give an overview of the novel systems reported in the last few years, which have been mostly obtained by organic phase-based synthesis and epitaxial growth processes. Since the heating efficiency of hybrid magnetic nanoparticles often relies on the exchange-interaction between their components, we discuss various interface-phenomena that are responsible for their magnetic properties. Finally, followed by a brief comment on future directions in the field, we outline recent advances on multifunctional nanoparticles that can boost the heating power with light and combine heating and temperature sensing in a single nanomaterial.
纳米尺度的加热是多种生物医学应用的基础,包括磁热疗和热触发药物递送。混合磁性纳米粒子中多种无机材料的组合提供了多功能平台,以在不同外部刺激下实现高效的热传递,或在过程中获得光学反馈。然而,这些纳米材料的成功设计和应用通常需要复杂的合成路线,并且它们的磁响应仍未被完全理解。在本综述中,我们概述了过去几年报道的新型系统,这些系统大多通过有机相合成和外延生长过程获得。由于混合磁性纳米粒子的加热效率通常依赖于其组分之间的交换相互作用,我们讨论了导致其磁性的各种界面现象。最后,在对该领域未来方向进行简要评论之后,我们概述了多功能纳米粒子的最新进展,这些纳米粒子可以通过光增强加热功率,并在单一纳米材料中结合加热和温度传感。