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量子点/二维混合纳米卷轴:用于高性能偏振光探测和超低阈值激光作用的新型材料。

QD/2D Hybrid Nanoscrolls: A New Class of Materials for High-Performance Polarized Photodetection and Ultralow Threshold Laser Action.

作者信息

Ghosh Rapti, Lin Hung-I, Chen Yu-Siang, Singh Mukesh, Yen Zhi-Long, Chiu Shengkuei, Lin Hsia-Yu, Bera Krishna P, Liao Yu-Ming, Hofmann Mario, Hsieh Ya-Ping, Chen Yang-Fang

机构信息

Institute of Atomic and Molecular Sciences, Academia Sinica, Taipei, 115, Taiwan.

Department of Physics, National Central University, ChungLi, 320, Taiwan.

出版信息

Small. 2020 Nov;16(45):e2003944. doi: 10.1002/smll.202003944. Epub 2020 Oct 20.

DOI:10.1002/smll.202003944
PMID:33079462
Abstract

Nanoscrolls are a class of nanostructures where atomic layers of 2D materials are stacked consecutively in a coaxial manner to form a 1D spiral topography. Self-assembly of chemical vapor deposition grown 2D WS monolayer into quasi-1D van der Waals scroll structure instigates a plethora of unique physiochemical properties significantly different from its 2D counterparts. The physical properties of such nanoscrolls can be greatly manipulated upon hybridizing them with high-quantum-yield colloidal quantum dots, forming 0D/2D structures. The efficient dissociation of excitons at the heterojunctions of QD/2D hybridized nanoscrolls exhibits a 3000-fold increased photosensitivity compared to the pristine 2D-material-based nanoscroll. The synergistic effects of confined geometry and efficient QD scatterers produce a nanocavity with multiple feedback loops, resulting in coherent lasing action with an unprecedentedly low lasing threshold. Predominant localization of the excitons along the circumference of this helical scroll results in a 12-fold brighter emission for the parallel-polarized transition compared to the perpendicular one, as confirmed by finite-difference time-domain simulation. The versatility of hybridized nanoscrolls and their unique properties opens up a powerful route for not-yet-realized devices toward practical applications.

摘要

纳米卷轴是一类纳米结构,其中二维材料的原子层以同轴方式连续堆叠,形成一维螺旋形貌。通过化学气相沉积生长的二维WS单层自组装成准一维范德华卷轴结构,激发了许多与二维对应物显著不同的独特物理化学性质。将此类纳米卷轴与高量子产率的胶体量子点杂交,形成0D/2D结构时,其物理性质可得到极大调控。与原始的基于二维材料的纳米卷轴相比,量子点/二维杂交纳米卷轴异质结处激子的有效解离表现出3000倍的光灵敏度提高。受限几何结构和高效量子点散射体的协同效应产生了具有多个反馈回路的纳米腔,从而实现了具有前所未有的低激光阈值的相干激光作用。有限时域差分模拟证实,激子沿该螺旋卷轴圆周的主要定位导致平行偏振跃迁的发射比垂直偏振跃迁亮12倍。杂交纳米卷轴的多功能性及其独特性质为尚未实现的实际应用设备开辟了一条有力途径。

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