论文标题

电化学上掺杂的纳米片及其背后的物理学的零阈值光学增益

Zero-threshold optical gain in electrochemically doped nanoplatelets and the physics behind it

论文作者

Geuchies, Jaco J., Dijkhuizen, Robbert, Koel, Marijn, Grimaldi, Gianluca, Fossé, Indy du, Evers, Wiel H., Hens, Zeger, Houtepen, Arjan J.

论文摘要

胶体纳米片(NPLS)是用于激光应用的有前途的材料。通常在2D材料的框架中讨论了这些性能,其中强烈的激子效应主导了带边缘附近的光学特性。同时,NPL具有有限的横向尺寸,因此NPL不是真正的扩展2D结构。在这里,我们研究了电化学N掺杂和光激发时CDSE/CDS/ZNS核壳壳NPLS的光体物理和增益性能。稳态吸收和PL光谱表明,由于激子结合能减少,核心壳壳纳米片的激子效应较弱。瞬态吸收研究表明,每个纳米病情的增益阈值仅为一种激发。使用电化学N掺杂,我们观察到带边缘激子过渡的完全漂白。将电化学掺杂与瞬时吸收光谱相结合,我们证明,在宽光谱范围内完全去除了增益阈值,并获得了数千cm-1的增益系数。这些掺杂的NPL是迄今为止报告的最佳性能胶体纳米材料增益培养基。由于CD和ZnS壳引起的低激子结合能与NPL的侧向尺寸相对较小,从而导致激发态在整个血小板上有效地被脱位。因此,核心壳NPL在QD中强限制与2D材料中主要的库仑效应之间存在边界。我们证明了该极限实际上是光学增益的理想选择,并且它导致血小板的最佳侧向尺寸,其中每NM2的增益阈值最小。

Colloidal nanoplatelets (NPLs) are promising materials for lasing applications. The properties are usually discussed in the framework of 2D materials, where strong excitonic effects dominate the optical properties near the band edge. At the same time, NPLs have finite lateral dimensions such that NPLs are not true extended 2D structures. Here we study the photophysics and gain properties of CdSe/CdS/ZnS core-shell-shell NPLs upon electrochemical n doping and optical excitation. Steady-state absorption and PL spectroscopy show that excitonic effects are weaker in core-shell-shell nanoplatelets due to the reduced exciton binding energy. Transient absorption studies reveal a gain threshold of only one excitation per nanoplatelet. Using electrochemical n doping we observe the complete bleaching of the band edge exciton transitions. Combining electrochemical doping with transient absorption spectroscopy we demonstrate that the gain threshold is fully removed over a broad spectral range and gain coefficients of several thousand cm-1 are obtained. These doped NPLs are the best performing colloidal nanomaterial gain medium reported to date. The low exciton binding energy due to the CdS and ZnS shells, in combination with the relatively small lateral size of the NPLs, result in excited states that are effectively delocalised over the entire platelet. Core-shell NPLs are thus on the border between strong confinement in QDs and dominant Coulombic effects in 2D materials. We demonstrate that this limit is in effect ideal for optical gain, and that it results in an optimal lateral size of the platelets where the gain threshold per nm2 is minimal.

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