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Brightness-equalized quantum dots: Engineering strategies derived from spectral trends

机译:亮度均衡的量子点:从光谱趋势得出的工程策略

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Quantum dots are semiconductor nanocrystals that absorb and emit light at wavelengths tunable by the size of the crystal. Size-tuning provides access to a broad range of optical spectra, however it is fundamentally problematic for many applications because it leads to a large mismatch in absorption cross-section and fluorescence brightness across a series of colors. We have recently demonstrated engineering strategies to generate multicolor, extinction-matched, and brightness-matched quantum dots based on colloidal multi-domain core/shell structures. We use alloyed cores with composition-tunable bandgaps and finely adjust the domain size and electronic properties of the shell to precisely match both absorption cross-section and quantum yield. Using this strategy, it is possible to tune fluorescence wavelength, extinction, and quantum yield independently, vastly expanding the photophysical landscape of these materials. Moreover compared with conventional size-tuning strategies, this enables access to a wider spectral range with compact dimensions. The equalized optical properties translate from the ensemble level down to the single-molecule level, setting the stage for new possibilities in highly quantitative, multiplexed imaging in cells and tissue. However selection of appropriate structural parameters to generate specific optical properties is challenging without insight into the photophysics of these materials. Here we describe the evolution of the optical properties of alloyed cores during the shell growth process that provide new insights into general engineering strategies.
机译:量子点是半导体纳米晶体,可以吸收和发射波长随晶体大小可调的光。尺寸微调提供了访问广泛范围的光谱的途径,但是,对于许多应用而言,这从根本上是有问题的,因为这会导致一系列颜色的吸收截面和荧光亮度出现较大的不匹配。我们最近展示了基于胶体多域核/壳结构生成多色,消光匹配和亮度匹配的量子点的工程策略。我们使用具有可调整组成的带隙的合金核,并精细调整壳的畴尺寸和电子性能,以精确匹配吸收截面和量子产率。使用这种策略,可以独立地调节荧光波长,消光和量子产率,从而极大地扩展了这些材料的光物理景观。此外,与传统的尺寸调整策略相比,这使得能够以紧凑的尺寸访问更宽的光谱范围。均衡的光学特性从集成度下降到单分子水平,为细胞和组织中高度定量,多重成像的新可能性奠定了基础。然而,在不了解这些材料的光物理性质的情况下,选择合适的结构参数以产生特定的光学特性是具有挑战性的。在这里,我们描述了壳生长过程中合金核光学特性的演变,这为常规工程策略提供了新见识。

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