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用于近红外光声多重差分成像的尖峰镧系纳米晶体

Sharp-peaked lanthanide nanocrystals for near-infrared photoacoustic multiplexed differential imaging.

作者信息

Loh Kang Yong, Li Lei S, Fan Jingyue, Goh Yi Yiing, Liew Weng Heng, Davis Samuel, Zhang Yide, Li Kai, Liu Jie, Liang Liangliang, Feng Minjun, Yang Ming, Zhang Hang, Ma Ping'an, Feng Guangxue, Mu Zhao, Gao Weibo, Sum Tze Chien, Liu Bin, Lin Jun, Yao Kui, Wang Lihong V, Liu Xiaogang

机构信息

Institute of Materials Research and Engineering, Agency for Science, Technology and Research (A*STAR), Singapore, Singapore.

Department of Chemistry, Stanford University, Stanford, CA, USA.

出版信息

Commun Mater. 2024;5. doi: 10.1038/s43246-024-00605-1. Epub 2024 Aug 21.

Abstract

Photoacoustic tomography offers a powerful tool to visualize biological relevant molecules and understand processes within living systems at high resolution in deep tissue, facilitated by the conversion of incident photons into low-scattering acoustic waves through non-radiative relaxation. Although current endogenous and exogenous photoacoustic contrast agents effectively enable molecular imaging within deep tissues, their broad absorption spectra in the visible to near-infrared (NIR) range limit photoacoustic multiplexed imaging. Here, we exploit the distinct ultrasharp NIR absorption peaks of lanthanides to engineer a series of NIR photoacoustic nanocrystals. This engineering involves precise host and dopant material composition, yielding nanocrystals with sharply peaked photoacoustic absorption spectra (~3.2 nm width) and a ~10-fold enhancement in NIR optical absorption for efficient deep tissue imaging. By combining photoacoustic tomography with these engineered nanocrystals, we demonstrate photoacoustic multiplexed differential imaging with substantially decreased background signals and enhanced precision and contrast.

摘要

光声断层扫描提供了一种强大的工具,可通过非辐射弛豫将入射光子转换为低散射声波,从而在深层组织中以高分辨率可视化生物相关分子并了解生命系统内的过程。尽管目前的内源性和外源性光声造影剂有效地实现了深层组织内的分子成像,但它们在可见光到近红外(NIR)范围内的宽吸收光谱限制了光声多重成像。在这里,我们利用镧系元素独特的超尖锐近红外吸收峰来设计一系列近红外光声纳米晶体。这种设计涉及精确的主体和掺杂剂材料组成,产生具有尖锐峰状光声吸收光谱(~3.2 nm宽度)和近红外光吸收增强约10倍的纳米晶体,以实现高效的深层组织成像。通过将光声断层扫描与这些工程化纳米晶体相结合,我们展示了光声多重差分成像,其背景信号大幅降低,精度和对比度得到提高。

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本文引用的文献

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Implementation strategies in phonopy and phono3py.声子谱和 phonopy3py 的实现策略。
J Phys Condens Matter. 2023 Jun 2;35(35). doi: 10.1088/1361-648X/acd831.

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