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首页> 外文期刊>Nature Communications >Bio-optimized energy transfer in densely packed fluorescent protein enables near-maximal luminescence and solid-state lasers
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Bio-optimized energy transfer in densely packed fluorescent protein enables near-maximal luminescence and solid-state lasers

机译:密集包装的荧光蛋白中的生物优化能量转移可实现接近最大的发光和固态激光器

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摘要

Bioluminescent organisms are likely to have an evolutionary drive towards high radiance. As such, bio-optimized materials derived from them hold great promise for photonic applications. Here, we show that biologically produced fluorescent proteins retain their high brightness even at the maximum density in solid state through a special molecular structure that provides optimal balance between high protein concentration and low resonance energy transfer self-quenching. Dried films of green fluorescent protein show low fluorescence quenching (-7 dB) and support strong optical amplification (g(net) = 22 cm(-1); 96 dB cm(-1)). Using these properties, we demonstrate vertical cavity surface emitting micro-lasers with low threshold (<100 pJ, outperforming organic semiconductor lasers) and self-assembled all-protein ring lasers. Moreover, solid-state blends of different proteins support efficient Forster resonance energy transfer, with sensitivity to intermolecular distance thus allowing all-optical sensing. The design of fluorescent proteins may be exploited for bio-inspired solid-state luminescent molecules or nanoparticles.
机译:生物发光生物可能会朝着高辐射的方向发展。因此,由它们衍生的生物优化材料对于光子应用具有广阔的前景。在这里,我们表明,通过特殊的分子结构,生物学产生的荧光蛋白即使在固态最大密度下也能保持其高亮度,该结构在高蛋白浓度和低共振能量转移自猝灭之间提供了最佳平衡。绿色荧光蛋白干膜显示低荧光猝灭(-7 dB),并支持强光放大(g(net)= 22 cm(-1); 96 dB cm(-1))。利用这些特性,我们演示了具有低阈值(<100 pJ,优于有机半导体激光器)的垂直腔表面发射微激光器和自组装全蛋白环形激光器。此外,不同蛋白质的固态混合物可支持有效的Forster共振能量转移,并且对分子间距离具有敏感性,因此可以进行全光学传感。荧光蛋白的设计可用于生物启发的固态发光分子或纳米颗粒。

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