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一维荧光硅纳米棒具有超高的光稳定性、良好的生物相容性和激发波长依赖的发射光谱。

One-Dimensional Fluorescent Silicon Nanorods Featuring Ultrahigh Photostability, Favorable Biocompatibility, and Excitation Wavelength-Dependent Emission Spectra.

机构信息

Jiangsu Key Laboratory for Carbon-Based Functional Materials and Devices, Institute of Functional Nano & Soft Materials (FUNSOM), and Collaborative Innovation Center of Suzhou Nano Science and Technology (NANO-CIC), Soochow University , Suzhou, Jiangsu 215123, China.

出版信息

J Am Chem Soc. 2016 Apr 13;138(14):4824-31. doi: 10.1021/jacs.6b00479. Epub 2016 Mar 30.

Abstract

We herein report a kind of one-dimensional biocompatible fluorescent silicon nanorods (SiNRs) with tunable lengths ranging ∼100-250 nm, which can be facilely prepared through one-pot microwave synthesis. In addition to the strong fluorescence (quantum yield value: ∼15%) and negligible toxicity, the resultant SiNRs exhibit excitation wavelength-dependent photoluminescence whose maximum emission wavelength ranges from ∼450 to ∼600 nm under serial excitation wavelengths from 390 to 560 nm, providing feasibility for multicolor biological imaging. More significantly, the SiNRs are ultrahighly photostable, preserving strong and nearly unchanged fluorescence under 400 min high-power UV irradiation, which is in sharp contrast to severe fluorescence quenching of organic dyes (e.g., FITC) or II-VI quantum dots (QDs) (e.g., CdTe QDs and CdSe/ZnS QDs) within 15 or 160 min UV treatment under the same experiment conditions, respectively. Taking advantage of these attractive merits, we further exploit the SiNRs as a novel type of color converters for the construction of white light-emitting diodes (LED), which is the first proof-of-concept demonstration of LED device fabricated using the one-dimensional fluorescent silicon nanostructures.

摘要

我们在此报告了一种一维生物相容性荧光硅纳米棒(SiNRs),其长度可调范围约为 100-250nm,可通过一锅微波合成轻松制备。除了强荧光(量子产率值:约 15%)和几乎无毒外,所得 SiNRs 表现出激发波长依赖性光致发光,其最大发射波长在 390nm 至 560nm 的连续激发波长范围内从约 450nm 至约 600nm 变化,为多色生物成像提供了可行性。更重要的是,SiNRs 具有超高的光稳定性,在 400 分钟的高功率紫外光照射下保持强且几乎不变的荧光,与在相同实验条件下 15 分钟或 160 分钟的紫外处理下有机染料(例如 FITC)或 II-VI 量子点(例如 CdTe QDs 和 CdSe/ZnS QDs)的严重荧光猝灭形成鲜明对比。利用这些吸引人的优点,我们进一步将 SiNRs 用作白光发光二极管(LED)的新型颜色转换器,这是使用一维荧光硅纳米结构制造 LED 器件的第一个概念验证演示。

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