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首页> 外文期刊>Scientific reports. >Protein-Based Three-Dimensional Whispering-Gallery-Mode Micro-Lasers with Stimulus-Responsiveness
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Protein-Based Three-Dimensional Whispering-Gallery-Mode Micro-Lasers with Stimulus-Responsiveness

机译:基于蛋白-的具有刺激响应性的三维回音壁模式微激光

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摘要

For the first time, proteins, a promising biocompatible and functionality-designable biomacromolecule material, acted as the host material to construct three-dimensional (3D) whispering-gallery-mode (WGM) microlasers by multiphoton femtosecond laser direct writing (FsLDW). Protein/Rhodamine B (RhB) composite biopolymer was used as optical gain medium innovatively. By adopting high-viscosity aqueous protein ink and optimized scanning mode, protein-based WGM microlasers were customized with exquisite true 3D geometry and smooth morphology. Comparable to previously reported artificial polymers, protein-based WGM microlasers here were endowed with valuable performances including steady operation in air and even in aqueous environments, and a higher quality value ( Q ) of several thousands (without annealing). Due to the “smart” feature of protein hydrogel, lasing spectrum was responsively adjusted by step of ~0.4?nm blueshift per 0.83-mmol/L Na2SO4 concentration change (0?~?5-mmol/L in total leading to ~2.59-nm blueshift). Importantly, other performances including Q , FWHM, FSR, peak intensities, exhibited good stability during adjustments. So, these protein-based 3D WGM microlasers might have potential in applications like optical biosensing and tunable “smart” biolasers, useful in novel photonic biosystems and bioengineering.
机译:蛋白质是一种有前途的生物相容性和功能可设计的生物大分子材料,它首次用作宿主材料,通过多光子飞秒激光直接写入(FsLDW)构造三维(3D)耳语画廊模式(WGM)微激光。蛋白质/若丹明B(RhB)复合生物聚合物被创新地用作光学增益介质。通过采用高粘度水性蛋白质墨水和优化的扫描模式,基于蛋白质的WGM微激光被定制为具有精确的真实3D几何形状和平滑的形态。与以前报道的人工聚合物相比,此处的基于蛋白质的WGM微激光具有宝贵的性能,包括在空气中甚至在水性环境中均能稳定运行,并且具有数千的更高质量值(Q)(无需退火)。由于蛋白质水凝胶的“智能”特性,每改变0.83 mmol / L Na 2 SO 4 的浓度,激光光谱就以〜0.4?nm的蓝移为步长进行响应调节。 (总共0?〜?5-mmol / L导致〜2.59 nm蓝移)。重要的是,包括Q,FWHM,FSR,峰强度在内的其他性能在调整过程中均表现出良好的稳定性。因此,这些基于蛋白质的3D WGM微激光可能在光学生物传感和可调谐“智能”生物激光等应用中具有潜力,可用于新型光子生物系统和生物工程。

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