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Room-Temperature Lasing in Colloidal Nanoplatelets via Mie-Resonant Bound States in the Continuum

机译:胶体纳米纳薄物中的室温通过连续体中的mie-resonant绑定状态激光

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Solid-state room-temperature lasing with tunability in a wide range of wavelengths is desirable for many applications. To achieve this, besides an efficient gain material with a tunable emission wavelength, a high quality-factor optical cavity is essential. Here, we combine a film of colloidal CdSe/CdZnS core-shell nanoplatelets with square arrays of nanocylinders made of titanium dioxide to achieve optically pumped lasing at visible wavelengths and room temperature. The all-dielectric arrays support bound states in the continuum (BICs), which result from lattice-mediated Mie resonances and boast infinite quality factors in theory. In particular, we demonstrate lasing from a BIC that originates from out-of-plane magnetic dipoles oscillating in phase. By adjusting the diameter of the cylinders, we tune the lasing wavelength across the gain bandwidth of the nanoplatelets. The spectral tunability of both the cavity resonance and nanoplatelet gain, together with efficient light confinement in BICs, promises low-threshold lasing with wide selectivity in wavelengths.
机译:对于许多应用来说,具有在各种波长范围内的可调性的固态室温可用于许多应用。为了实现这一点,除了具有可调谐发射波长的有效增益材料之外,高质量的光学腔是必不可少的。这里,我们将胶体Cdse / Cdzns核 - 壳纳米片与由二氧化钛制成的纳米叶片的方形阵列组合,以在可见波长和室温下实现光学泵浦激光。全介电阵列支持连续体(BICS)中的绑定状态,从格子介导的MIE共振产生,从理论上夸大无限的质量因素。特别是,我们展示了从平面外散热的BIC振荡的BIC激光。通过调节汽缸的直径,我们将激光波长横跨纳米孔的增益带宽调谐。腔谐振和纳米片增益的光谱可调性以及高效的BIC中的光线限制,在波长中具有宽选择性的低阈值激光。

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