Impact of geometry on semiconductor quantum dots optical properties

被引:0
作者
Avetisyan, A. H. [1 ,2 ]
Vinnichenko, M. Ya. [3 ]
Hakobyan, E. S. [1 ]
机构
[1] Russian Armenian Univ, Yerevan, Armenia
[2] Inst Chem Phys, Yerevan, Armenia
[3] Peter Great St Petersburg Polytech Univ, St Petersburg, Russia
来源
ST PETERSBURG POLYTECHNIC UNIVERSITY JOURNAL-PHYSICS AND MATHEMATICS | 2025年 / 18卷 / 01期
关键词
finite element method; effective mass approximation; nanostructures; struc-tural asymmetry; absorption; photoluminescence; nanostar; nanotadpole; GROWTH;
D O I
10.18721/JPM.181.115
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
A blend of finite element method and effective mass approximation is used to analyze the optical properties of the following nanostructures, namely nanoplatelets, nanorods and other structures. This theoretical research is directed towards the effects of structural asymmetry on size quantization, absorption coefficients, and photoluminescence. The introduction of asymmetry in these nanostructures led to significant shifts in the absorption spectra and marked variations in photoluminescence intensity compared to the symmetric ones. The results provided in this work will be that even slight deviations from symmetry can provide rise to radical alterations in optical behavior, which turn out critical in its design and optimization when thinking of a host of optoelectronic applications. The overall results further suggest that better and tailor-made design strategies in the engineering of nanomaterials can be achieved with an improved understanding of the interplay between the structural features and optical properties. In general, the present research contributes to the growing understanding directed at the functional enhancement of nanostructures through controlled structural manipulation.
引用
收藏
页码:88 / 94
页数:7
相关论文
共 15 条
[1]   Controlling the nucleation and growth kinetics of lead halide perovskite quantum dots [J].
Akkerman, Quinten A. ;
Nguyen, Tan P. T. ;
Boehme, Simon C. ;
Montanarella, Federico ;
Dirin, Dmitry N. ;
Wechsler, Philipp ;
Beiglbock, Finn ;
Raino, Gabriele ;
Erni, Rolf ;
Katan, Claudine ;
Even, Jacky ;
Kovalenko, Maksym V. .
SCIENCE, 2022, 377 (6613) :1406-1412
[2]   Quantum Dots and Their Applications: What Lies Ahead? [J].
Cotta, Monica A. .
ACS APPLIED NANO MATERIALS, 2020, 3 (06) :4920-4924
[3]   Optical Properties of Conical Quantum Dot: Exciton-Related Raman Scattering, Interband Absorption and Photoluminescence [J].
Gavalajyan, Sargis P. ;
Mantashian, Grigor A. ;
Kharatyan, Gor Ts. ;
Sarkisyan, Hayk A. ;
Mantashyan, Paytsar A. ;
Baskoutas, Sotirios ;
Hayrapetyan, David B. .
NANOMATERIALS, 2023, 13 (08)
[4]   Quantum dots: Prospectives, toxicity, advances and applications [J].
Gidwani, Bina ;
Sahu, Varsha ;
Shukla, Shiv Shankar ;
Pandey, Ravindra ;
Joshi, Veenu ;
Jain, Vikas Kumar ;
Vyas, Amber .
JOURNAL OF DRUG DELIVERY SCIENCE AND TECHNOLOGY, 2021, 61
[5]  
Hakobyan E.S., 2019, J. Phys. Conf. Ser.
[6]   In situ growth of CdS quantum dots on phosphorus-doped carbon nitride hollow tubes as active 0D/1D heterostructures for photocatalytic hydrogen evolution [J].
Liang, Qian ;
Zhang, Chengjia ;
Xu, Song ;
Zhou, Man ;
Zhou, Yingtang ;
Li, Zhongyu .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2020, 577 :1-11
[7]   Modeling of Quantum Dots with the Finite Element Method [J].
Mantashian, G. A. ;
Mantashyan, P. A. ;
Hayrapetyan, D. B. .
COMPUTATION, 2023, 11 (01)
[8]   Impurity effects on binding energy, diamagnetic susceptibility and photoionization cross-section of chalcopyrite AgInSe2 nanotadpole [J].
Mantashian, Grigor A. ;
Hayrapetyan, David B. .
JOURNAL OF PHYSICS-CONDENSED MATTER, 2022, 34 (24)
[9]   Talbot effect in InAs/GaAs coupled cylindrical quantum dots ensemble [J].
Mantashyan, Paytsar ;
Mantashian, Grigor ;
Hayrapetyan, David .
PHYSICA E-LOW-DIMENSIONAL SYSTEMS & NANOSTRUCTURES, 2023, 148
[10]  
Otfried M., 2004, Semiconductors: data handbook