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金纳米颗粒的低频磁响应

Low-frequency magnetic response of gold nanoparticles.

作者信息

Harke Saba, Habibpourmoghadam Atefeh, Evlyukhin Andrey B, Calà Lesina Antonio, Chichkov Boris N

机构信息

Institute of Quantum Optics, Leibniz University Hannover, Hannover, 30167, Germany.

Cluster of Excellence PhoenixD, Leibniz University Hannover, Hannover, 30167, Germany.

出版信息

Sci Rep. 2023 Dec 7;13(1):21588. doi: 10.1038/s41598-023-48813-y.

Abstract

Gold nanoparticles (AuNPs) exposed to low frequency magnetic fields have shown promise in enhancing biological processes, such as cellular reprogramming. Despite the experimental evidence, a comprehensive understanding of the underlying physical principles and the corresponding theory remains elusive. The most common hypothesis is that functionalized nanoparticles transiently amplify magnetic fields, leading to improved cellular reprogramming efficiency. However, a detailed investigation on this topic is lacking. This paper bridges this knowledge gap by conducting a comprehensive investigation on the magnetic response of surface-modified AuNPs exposed to magnetic fields with frequencies up to hundreds of MHz. Starting with the inherent properties of bulk gold material, we explore a wide range of magnetic susceptibilities that might result from the redistribution of charge carriers due to bond molecules on the particle surfaces. Through analytical models and numerical electromagnetic simulations, we examine various geometric factors that can enhance the magnetic response, including the number of particles, spatial distribution, size, and shape. Our broad investigation provides researchers with analytical and numerical estimates of the magnetic response of nanoparticles, and the associated limits that can be expected. We found that a magnetic field enhancement comparable to the incident field requires very high magnetic susceptibilities, well beyond the values measured in functionalized gold nanoparticles thus far.

摘要

暴露于低频磁场的金纳米颗粒(AuNPs)已显示出在增强生物过程(如细胞重编程)方面的潜力。尽管有实验证据,但对其潜在物理原理和相应理论的全面理解仍然难以捉摸。最常见的假设是功能化纳米颗粒会短暂放大磁场,从而提高细胞重编程效率。然而,目前缺乏对该主题的详细研究。本文通过对暴露于频率高达数百兆赫兹磁场的表面改性AuNPs的磁响应进行全面研究,填补了这一知识空白。从块状金材料的固有特性出发,我们探索了由于颗粒表面键合分子导致电荷载流子重新分布可能产生的广泛磁化率。通过分析模型和数值电磁模拟,我们研究了各种可增强磁响应的几何因素,包括颗粒数量、空间分布、尺寸和形状。我们的广泛研究为研究人员提供了纳米颗粒磁响应的分析和数值估计,以及预期的相关限制。我们发现,要实现与入射场相当的磁场增强,需要非常高的磁化率,远远超出了迄今为止在功能化金纳米颗粒中测得的值。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e134/10703919/a7c70adc57bc/41598_2023_48813_Fig1_HTML.jpg

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