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首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >Concentrated solar irradiation protocols for the efficient synthesis of tri-color emissive carbon dots and photophysical studies
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Concentrated solar irradiation protocols for the efficient synthesis of tri-color emissive carbon dots and photophysical studies

机译:集中的太阳辐射方案,用于有效合成三色发光碳点和光物理研究

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摘要

In contrast to conventional nanomaterials or organic dyes, carbon dots possess a variety of appealing properties including chemical inertness and easy manipulation and they can be dispersed in water. Herein, the use of a concentrated solar irradiation sintering strategy for the rapid and efficient assembly of carbon dots (CDs) has been reported for the first time. This novel alternative pathway effectively uses a renewable source and the process is feasible and environmentally sustainable. Three kinds of CDs were obtained, which demonstrate blue, green and red luminescence. Highly efficient blue-emitting CDs with quantum yield as high as 81% have been realized. The blue and red carbon dots give rise to excitation-independent emission peaks at 443 and 592 nm, respectively; however, the green CDs feature a continuous shift and the evolution of emission curves varies from 480 to 538 nm. By regulating the composition and ratios of these tri-color carbon dots, the emission band generates peaks from blue to red light, which cover almost the entire visible light range. Upon a single ultra-violet excitation at 365 nm, a white-light emission with CIE coordinates of (0.28, 0.33) was detected and the signal was very close to pure white light (0.33, 0.33). This study introduces a new method for fabricating low-cost nanoparticles as potential phosphors for light-emitting uses.
机译:与常规的纳米材料或有机染料相比,碳点具有各种吸引性的性质,包括化学惰性和易于操纵,它们可以分散在水中。在此,首次报道了使用用于浓缩的太阳辐射烧结稳定性的碳点(CDS)的快速高效组装策略。这种新颖的替代途径有效地使用可再生来源,该过程是可行和环境可持续的。获得了三种CD,其展示了蓝色,绿色和红色发光。已经实现了高达81%的量子产量高效的蓝色发光CD。蓝色和红碳点分别产生443和592nm的激发无关的发射峰;然而,绿色CD具有连续换档,发射曲线的演变在480至538nm之间变化。通过调节这些三色碳点的组成和比,发射带产生从蓝色到红光的峰,这几乎覆盖了整个可见光范围。在365nm的单个紫外激发时,检测到(0.28,0.33)的CIE坐标的白光发射,并且信号非常接近纯白光(0.33,0.33)。本研究介绍了一种制造低成本纳米粒子作为发光用途的潜在磷光体的新方法。

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