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相纯CdSe/CdS量子点系综中的量子限制斯塔克效应。

Quantum-confined stark effect in the ensemble of phase-pure CdSe/CdS quantum dots.

作者信息

Zhang Lei, Lv Bihu, Yang Hongyu, Xu Ruilin, Wang Xiaoyong, Xiao Min, Cui Yiping, Zhang Jiayu

机构信息

Advanced Photonics Center, Southeast University, Nanjing 210096, China.

National Laboratory of Solid State Microstructures, School of Physics, and Collaborative Innovation Center of Advanced Microstructures, Nanjing University, Nanjing 210093, China.

出版信息

Nanoscale. 2019 Jul 14;11(26):12619-12625. doi: 10.1039/c9nr03061a. Epub 2019 Jun 24.

Abstract

Colloidal semiconductor quantum dots (QDs) have recently attracted great attention in electric field sensing via the quantum-confined Stark effect (QCSE), but they suffer from the random local electric field around the charged QDs through the Auger process or defect traps. Here, QCSE in the ensemble of phase-pure wurtzite CdSe/CdS QDs was studied by applying a uniform external electric field. We observed clear field-dependent photoluminescence (PL) and absorption characteristics in thick-shell CdSe/CdS QDs with 11 CdS monolayers (11 MLs) including a pronounced spectral redshift in PL of ∼2.3 nm and absorption of ∼2.1 nm. The time-dependent PL intensity traces implied that the thick-shell QDs were conducive to realize the Stark shift in QD ensembles due to the effective suppression of the main sources of the local field. These findings were in stark contrast to those of moderate-shell (5 MLs) and ultrathick-shell (15 MLs) CdSe/CdS QDs. The measurement value of exciton polarizability was smaller than the theoretical value, which may be influenced by very few exciton traps. Moreover, the amplified stimulated emission also exhibited obvious optical modulations under the electric field with decreased emission intensity and an increased ultrafast lifetime. Finally, the temporal evolution of the multiexciton process in thick-shell CdSe/CdS QDs indicated that the multiexciton state induced a higher energy state near the band edge, which may weaken the QCSE of a single exciton. Therefore, it was demonstrated that efficient field control over the optical properties of these nanomaterials is feasible and this can open up potential applications in field-controlled electro-optic modulators.

摘要

胶体半导体量子点(QDs)最近在通过量子限制斯塔克效应(QCSE)进行电场传感方面引起了极大关注,但它们会通过俄歇过程或缺陷陷阱受到带电量子点周围随机局部电场的影响。在此,通过施加均匀外部电场研究了纯相纤锌矿CdSe/CdS量子点集合中的QCSE。我们在具有11个CdS单层(11 MLs)的厚壳CdSe/CdS量子点中观察到了明显的场依赖光致发光(PL)和吸收特性,包括PL中约2.3 nm的明显光谱红移和约2.1 nm的吸收。随时间变化的PL强度曲线表明,由于有效抑制了局部场的主要来源,厚壳量子点有利于在量子点集合中实现斯塔克位移。这些发现与中壳(5 MLs)和超厚壳(15 MLs)CdSe/CdS量子点的发现形成鲜明对比。激子极化率的测量值小于理论值,这可能受到极少数激子陷阱的影响。此外,放大的受激发射在电场下也表现出明显的光学调制,发射强度降低,超快寿命增加。最后,厚壳CdSe/CdS量子点中多激子过程的时间演化表明,多激子态在带边附近诱导出更高的能态,这可能会削弱单激子的QCSE。因此,证明了对这些纳米材料的光学性质进行有效的场控制是可行的,这可以为场控电光调制器开辟潜在应用。

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