论文标题

单耦合胶体量子点分子中相互作用的充电状态的完整映射

Complete mapping of interacting charging states in single coupled colloidal quantum dot molecules

论文作者

Panfil, Yossef E., Cui, Jiabin, Koley, Somnath, Banin, Uri

论文摘要

到目前为止,现代光电设备中的主要构件是胶体量子点(CQD)(CQD),仅与一个激子所在的一个发射中心合成了。耦合的胶体量子点分子(CQDM)的最新发展,其中两个核心壳CQD融合在一起以近距离形成两个发射中心,允许探索一个CQD中的电荷载体如何影响另一个CQD中的电荷载体。低温单颗粒光谱表明,尽管CQD单体表现出一个简单的发射光谱,其中包括一个主发射峰,具有明确定义的声子边带,但CQDMS表现出一个复杂的频谱,并根据已知的声子频率而具有多个峰。基于互补的发射极化和时间分辨分析,这分配给了两个耦合发射中心的荧光。此外,复杂的峰结构显示了两个发射中心之间耦合的相关光谱扩散。利用Schrodinger-Poisson自一致的计算,我们直接绘制了光谱行为,在CQDM的中性和带电状态之间交替。因此,与带电发射中心和第二发射中心之间的静电相互作用相关的光谱移位是完全映射的。此外,还确定了移动表面电荷的影响,从而靠近电荷的发射中心显示出较大的偏移。还确定了同时指出两个排放中心的实例。通过CQDM内的耦合及其各向异性结构启用了充电状态的详细映射。对耦合相互作用的这种理解是基于CQDM的量子技术和传感应用程序的进步。

Colloidal Quantum Dots (CQDs), major building blocks in modern opto-electronic devices, have so far been synthesized with only one emission center where the exciton resides. Recent development of coupled Colloidal Quantum Dots Molecules (CQDM), where two core-shell CQDs are fused to form two emission centers in close proximity, allows to explore how charge carriers in one CQD affect the charge carriers in the other CQD. Cryogenic single particle spectroscopy reveals that while CQD monomers manifest a simple emission spectrum comprising a main emission peak with well-defined phonon sidebands, CQDMs exhibit a complex spectrum with multiple peaks that are not all spaced according to the known phonon frequencies. Based on complementary emission polarization and time-resolved analysis, this is assigned to fluorescence of the two coupled emission centers. Moreover, the complex peak structure shows correlated spectral diffusion indicative of the coupling between the two emission centers. Utilizing Schrodinger-Poisson self-consistent calculations, we directly map the spectral behavior, alternating between neutral and charged states of the CQDM. Spectral shifts related to electrostatic interaction between a charged emission center and the second emission center are thus fully mapped. Furthermore, effects of moving surface charges are identified, whereby the emission center proximal to the charge shows larger shifts. Instances where the two emission centers are negatively charged simultaneously are also identified. Such detailed mapping of charging states is enabled by the coupling within the CQDM and its anisotropic structure. This understanding of the coupling interactions is a progress towards quantum technology and sensing applications based on CQDMs.

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