Xiang Wenbin, Zhu Baohua, Bai Chunzheng, Gu Bing, Lv Changgui, Zhang Jiayu
Advanced Photonics Center, Southeast University, Nanjing 210096, China.
Institute of Micro/Nano Photonic Materials and Applications, School of Physics and Electronics, Henan University, Kaifeng 475004, China.
Nanoscale. 2023 Nov 16;15(44):17996-18003. doi: 10.1039/d3nr04532c.
As a one-dimensional quantum confined material, colloidal semiconductor nanoplatelets have been widely studied as potential nonlinear materials due to their strong exciton effect and large two-photon absorption cross-section similar to that of two-dimensional materials. In this work, CdSe-CdS core-shell nanoplatelets were synthesized and third-order nonlinear optical properties related to shell thickness were measured using the Z-scan method. Measurement revealed a monotonic increase in the imaginary part of the third-order nonlinear susceptibility (Im) of CdSe-CdS nanoplatelets, ranging from 0.62 × 10 esu to 2.43 × 10 esu, with the growth of shell thickness. The real part of the third-order nonlinear susceptibility (Re) shows a non-monotonic change between 4.28 × 10 esu and 1.99 × 10 esu. The trends were further elucidated by analyzing the optical properties of the nanoplatelets, such as absorption, photoluminescence, and quantum yield, and understanding the variations in defect distribution, exciton binding energy, and quantum confinement effects. The results indicated that the appropriate passivation of the CdS shell effectively enhanced the luminescent performance and third-order nonlinearity of the nanoplatelets, while the induced defects and weakened quantum confinement effects due to the continued shell growth resulted in the opposite effect.
作为一种一维量子限域材料,胶体半导体纳米片由于其强激子效应和与二维材料相似的大二光子吸收截面,作为潜在的非线性材料受到了广泛研究。在这项工作中,合成了CdSe-CdS核壳纳米片,并使用Z扫描方法测量了与壳层厚度相关的三阶非线性光学性质。测量结果表明,随着壳层厚度的增加,CdSe-CdS纳米片的三阶非线性极化率虚部(Im)单调增加,范围从0.62×10 esu到2.43×10 esu。三阶非线性极化率实部(Re)在4.28×10 esu和1.99×10 esu之间呈现非单调变化。通过分析纳米片的光学性质,如吸收、光致发光和量子产率,并理解缺陷分布、激子结合能和量子限域效应的变化,进一步阐明了这些趋势。结果表明,CdS壳层的适当钝化有效地提高了纳米片的发光性能和三阶非线性,而由于壳层持续生长导致的诱导缺陷和量子限域效应减弱则产生了相反的效果。