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首页> 外文期刊>Journal of Materials Chemistry, B. materials for biology and medicine >Controllable synthesis of tetrapod gold nanocrystals with precisely tunable near-infrared plasmon resonance towards highly efficient surface enhanced Raman spectroscopy bioimaging
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Controllable synthesis of tetrapod gold nanocrystals with precisely tunable near-infrared plasmon resonance towards highly efficient surface enhanced Raman spectroscopy bioimaging

机译:具有精确可调的近红外等离子体共振朝着高效表面增强拉曼光谱生物成像的四足金纳米晶体的可控合成

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摘要

Tetrapod gold nanocrystals, to be the core of surface-enhanced Raman spectroscopy (SERS) nanoprobes, with tunable localized surface plasmon resonance (LSPR) from 650 nm to 785 nm in the Vis-NIR region have been successfully prepared by a facile seeded growth approach. The local electromagnetic field distribution and the huge extinction cross section of the tetrapod gold nanocrystals were simulated by a finite-difference time-domain method. Both the calculated and experimental results reveal that the LSPR property of the tetrapod gold nanocrystals is closely dependent on the morphology features of their tips, where a strong field enhancement appears. These tetrapod nanocrystals have exhibited a good capability not only for Raman signal enhancement but also when successfully utilized as NIR SERS bioimaging nanoprobes. In vitro SERS imaging of stained breast cancer cells has also been demonstrated. The tetrapod gold nanocrystals developed here with a precisely tunable LSPR offer advantages of enhanced signal quality, good stability and better biocompatibility in SERS imaging, which has great potential for various biomedical applications.
机译:四面体金纳米晶体是表面增强拉曼光谱(SERS)纳米探针的核心,已通过一种简便的种子生长方法成功地制备了Vis-NIR区域中从650 nm至785 nm可调的局部表面等离子体共振(LSPR)。 。用时域有限差分法模拟了四足金纳米晶体的局部电磁场分布和巨大的消光截面。计算结果和实验结果均表明,四足金纳米晶体的LSPR特性密切依赖于其尖端的形态特征,在尖端出现了强电场增强。这些四脚纳米晶体不仅具有增强拉曼信号的能力,而且还成功地用作NIR SERS生物成像纳米探针。还已经证明了染色乳腺癌细胞的体外SERS成像。此处开发的具有精确可调LSPR的四足金纳米晶体在SERS成像中具有增强的信号质量,良好的稳定性和更好的生物相容性的优势,在各种生物医学应用中具有巨大的潜力。

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