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精确控制二氧化硅壳层厚度,并找到金纳米棒@二氧化硅的峰值热扩散性能的最佳厚度。

Precise control over the silica shell thickness and finding the optimal thickness for the peak heat diffusion property of AuNR@SiO.

机构信息

KU-KIST Graduate School of Converging Science and Technology, Korea University, 145 Anam-ro, Seongbuk-gu, Seoul 02841, Republic of Korea.

Department of Nanoconvergence Engineering and Department of Polymer Nano-Science and Technology, Jeonbuk National University, Jeonju, Jeonbuk 54896, Republic of Korea.

出版信息

J Mater Chem B. 2022 Jan 19;10(3):364-372. doi: 10.1039/d1tb02288a.

Abstract

Silica-coated gold nanorods (AuNRs) exhibit significantly enhanced photothermal effects and photoacoustic (PA) signal intensities, which is beneficial for various nanophotonic applications in materials science. However, the silica shell thickness for optimum enhancement is not fully understood and is even controversial depending on the physical state of the silica shell. This is because of the lack of systematic investigations of the nanoscale silica shell thickness and the photothermal effect. This study provides a robust synthetic method to control the silica shell thickness at the nanoscale and the physical state-dependent heat diffusion property. The selected base and solvent system enabled the production of silica-coated AuNRs (AuNR@SiO) with silica shell thicknesses of 5, 10, 15, 20, 25, 30, 35, and 40 nm. AuNRs with a 20 nm silica shell showed the highest photothermal effect with a 1.45-times higher photothermal efficiency than that of AuNRs without a silica shell. The low density of the silica shell on the AuNRs showed a low photothermal effect and photostability. It was found that the disruption of cetyltrimethyl ammonium bromide (CTAB) layers on the AuNRs was responsible for the low photostability of the AuNRs. The simulation study for the heat diffusion property showed facilitated heat diffusion in the presence of a 20 nm silica shell. In a cell-based study, AuNRs with a 20 nm silica shell showed the most sensitive photothermal effect for cell death. The results of this robust study can provide conclusive conditions for the optimal silica shell thickness to obtain the highest photothermal effect, which will be useful for the future design of nanomaterials in various fields of application.

摘要

硅涂层金纳米棒(AuNRs)表现出显著增强的光热效应和光声(PA)信号强度,这有利于材料科学中各种纳米光子学应用。然而,对于最佳增强的硅壳厚度尚不完全了解,甚至根据硅壳的物理状态存在争议。这是因为缺乏对纳米尺度硅壳厚度和光热效应的系统研究。本研究提供了一种强大的合成方法,可以控制纳米尺度的硅壳厚度和物理状态相关的热扩散特性。所选的基底和溶剂体系能够生产具有 5、10、15、20、25、30、35 和 40nm 硅壳厚度的硅涂层金纳米棒(AuNR@SiO)。具有 20nm 硅壳的 AuNR 表现出最高的光热效应,光热效率比没有硅壳的 AuNR 高 1.45 倍。AuNR 上硅壳的低密度表现出低光热效应和光稳定性。研究发现,AuNR 上十六烷基三甲基溴化铵(CTAB)层的破坏是 AuNR 光稳定性低的原因。热扩散特性的模拟研究表明,存在 20nm 硅壳时,热扩散得到促进。在基于细胞的研究中,具有 20nm 硅壳的 AuNR 对细胞死亡表现出最敏感的光热效应。这项强大研究的结果可为获得最高光热效应的最佳硅壳厚度提供明确的条件,这将有助于未来在各个应用领域设计纳米材料。

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