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聚合物包覆的钆掺杂磁铁矿纳米颗粒的可控偶极相互作用对磁热疗应用的影响

Influence of Controlled Dipolar Interaction for Polymer-Coated Gd-Doped Magnetite Nanoparticles toward Magnetic Hyperthermia Application.

作者信息

Hazarika Krishna Priya, Borgohain C, Borah J P

机构信息

Nanomagnetism Group, Department of Physics, National Institute of Technology Nagaland, Dimapur, Nagaland 797103, India.

Central Instrumentation Facility (CIF), Indian Institute of Technology Guwahati, Guwahati, Assam 781039, India.

出版信息

ACS Omega. 2024 Feb 1;9(6):6696-6708. doi: 10.1021/acsomega.3c07835. eCollection 2024 Feb 13.

Abstract

To maximize heat release from immobilized nanoparticles (NPs), a detailed understanding of the controlled dipolar interaction is essential for challenging magnetic hyperthermia (MH) therapies. To design optimal MH experiments, it is necessary to precisely determine magnetic states impacted by the inevitable concurrence of magnetic interactions under a common experimental form. In this work, we describe how the presence of dipolar interaction significantly alters the heating mechanism of host materials when NPs are embedded in them for MH applications. The concentration of the NPs and the intensity of their interaction can profoundly impact the amplitude and shape of the heating curves of the host material. The heating capability of interacting NPs might be enhanced or diminished, depending on their concentration within the host material. We propose chitosan- and dextran-coated Gd-doped FeO NPs directing dipole interactions effective for the linear regime to enlighten the pragmatic trends. The outcomes of our study may have substantial implications for cancer therapy and could inspire novel approaches for maximizing the effectiveness of MH.

摘要

为了使固定化纳米颗粒(NPs)的热释放最大化,对于具有挑战性的磁热疗(MH)疗法而言,深入了解可控偶极相互作用至关重要。为了设计最佳的MH实验,有必要在常见的实验形式下精确确定受磁相互作用不可避免的同时存在影响的磁状态。在这项工作中,我们描述了当将NPs嵌入主体材料用于MH应用时,偶极相互作用的存在如何显著改变主体材料的加热机制。NPs的浓度及其相互作用强度会深刻影响主体材料加热曲线的幅度和形状。相互作用的NPs的加热能力可能会增强或减弱,这取决于它们在主体材料中的浓度。我们提出壳聚糖和葡聚糖包覆的掺钆FeO NPs可引导偶极相互作用在线性区域有效,以阐明实际趋势。我们的研究结果可能对癌症治疗具有重大意义,并可能激发新的方法来最大化MH的有效性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1d3b/10870280/dc095b97fbf8/ao3c07835_0001.jpg

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