Linear and Nonlinear Optical Properties in CdSe/ZnS/CdSe and ZnS/CdSe/ZnS Spherical Core-Shell-Shell Quantum Dots
Subject Areas : Optical PropertiesAbdolali Rabanian 1 , Mina Neghabi 2 , Mehdi Zadsar 3 , Mostafa Jafari 4
1 - Department of Physics, Najafabad Branch, Islamic Azad University, Najafabad, Iran.
2 - Department of Physics, Faculty of Physics, Islamic Azad University, Najafabad Branch, Najafabad, Iran
3 - Department of Physics, Najafabad Branch, Islamic Azad University, Najafabad, Iran
4 - Department of Mathematics, Najafabad Branch, Islamic Azad University, Najafabad, Iran
Keywords:
Abstract :
[1] Jin, X., et al., Thick-shell CdZnSe/ZnSe/ZnS quantum dots for bright white light-emitting diodes. Journal of Luminescence, 2020: p. 117670.
[2] Deng, B., et al., Low temperature synthesis of highly bright green emission CuInS2/ZnS quantum dots and its application in light-emitting diodes. Journal of Alloys and Compounds, 2020: p. 155400.
[3] Ye, Y., et al., Efficient multi-shell CuInS2/ZnS/ZnS quantum-dots based light-emitting diodes: Time-controlled synthesis of quantum-dots and carrier balance effects of PEI. Optical Materials, 2020. 106: p. 109926.
[4] Ganguly, A. and S. Nath, Mn-doped CdS quantum dots as sensitizers in solar cells. Materials Science and Engineering: B, 2020. 255: p. 114532.
[5] Wang, A., et al., Advances in perovskite quantum-dot solar cells. Journal of Energy Chemistry, 2020.
[6] Latif, H., et al., A novel, PbS quantum dot-Sensitized solar cell structure with TiO2-fMWCNTS nano-composite filled meso-porous anatase TiO2 photoanode. Solar Energy, 2020. 204: p. 617-623.
[7] Radzi, N., et al., Q-switched fiber laser based on CdS quantum dots as a saturable absorber. Results in Physics, 2020. 16: p. 103123.
[8] Barseghyan, M., et al., Control of electronic and optical properties of a laser dressed double quantum dot molecule by lateral electric field. Physica E: Low-dimensional Systems and Nanostructures. 126: p. 114362.
[9] Yousefvand, H.R., Impact of carrier heating on performance of quantum-dot semiconductor lasers: Theoretical study and circuit-level modeling. Optics Communications. 478: p. 126395.
[10] Moulhim, A., B. Tripathi, and M. Kumar, Investigating the effect of quantized confining energy on the quantum coulomb blockade phenomena in single-electron transistor. Solid State Communications, 2020: p. 114078.
[11] Ali, H., et al., Single-electron pumping in a ZnO single-nanobelt quantum dot transistor. Science China Physics, Mechanics & Astronomy, 2020. 63(6): p. 267811.
[12] Khademhosseini, V., et al., Current Analysis of Single Electron Transistor Based on Graphene Double Quantum Dots. ECS Journal of Solid State Science and Technology, 2020. 9(2): p. 021003.
[13] Hensen, B., et al., A silicon quantum-dot-coupled nuclear spin qubit. Nature Nanotechnology, 2020. 15(1): p. 13-17.
[14] Kodera, T. Silicon quantum dot devices for spin-based quantum computing. in 2020 IEEE Silicon Nanoelectronics Workshop (SNW). 2020. IEEE.
[15] Ricco, L., et al., Interaction induced hybridization of Majorana zero modes in a coupled quantum-dot–superconducting-nanowire hybrid system. Physical Review B, 2020. 102(16): p. 165104.
[16] Ollivier, H., et al., Reproducibility of high-performance quantum dot single-photon sources. ACS Photonics, 2020. 7(4): p. 1050-1059.
[17] Baride, A., et al., One-and two-photon electron-transfer induced uncaging of coumarin from cinnamate-capped CdSe quantum dots. Journal of Luminescence, 2020: p. 117112.
[18] Kotb, A. and C. Guo, All-optical NOR and XNOR logic gates at 2 Tb/s based on two-photon absorption in quantum-dot semiconductor optical amplifiers. Optical and Quantum Electronics, 2020. 52(1): p. 30.
[19] Makhlouf, D., et al., Modeling of the second harmonic generation in a lens-shaped InAs/GaAs quantum core/shell dot under temperature, pressure and applied electric field effects. Results in Physics, 2020. 16: p. 102961.
[20] Evangelou, S., Comment on “Tunneling effect on second-harmonic generation in quantum dot molecule, Superlattices and Microstructures 91 (2016) 358-364”. Superlattices and Microstructures, 2020: p. 106708.
[21] Arif, S., et al., Analyzing role of relaxation time on second harmonic generation and optical dielectric function of impurity doped quantum dots under the aegis of noise. Physica B: Condensed Matter, 2020: p. 412166.
[22] Kashani, H.M., et al., Bottom-up and green-synthesis route of amino functionalized graphene quantum dot as a novel biocompatible and label-free fluorescence probe for in vitro cellular imaging of human ACHN cell lines. Materials Science and Engineering: B, 2019. 251: p. 114452.
[23] Rana, M., et al., Glutathione capped core/shell CdSeS/ZnS quantum dots as a medical imaging tool for cancer cells. Inorganic Chemistry Communications, 2020. 112: p. 107723.
[24] Liang, H., et al., Carbon quantum Dot@ Silver nanocomposite–based fluorescent imaging of intracellular superoxide anion. Microchimica Acta, 2020. 187(9): p. 1-9.
[25] Vinasco, J.A., et al., Effects of Geometry on the Electronic Properties of Semiconductor Elliptical Quantum Rings. Scientific Reports, 2018. 8(1): p. 13299.
[26] Khordad, R., B. Mirhosseini, and M.M. Mirhosseini, Thermodynamic Properties of a GaAs Quantum Dot with an Effective-Parabolic Potential: Theory and Simulation. Journal of Low Temperature Physics, 2019. 197(1): p. 95-110.
[27] Akankan, O., et al., The effects of geometrical shape and impurity position on the self-polarization of a donor impurity in an infinite GaAs/AlAs tetragonal quantum dot. Indian Journal of Physics, 2020.
[28] Stevanović, L., et al., Theoretical investigation of the transient regime of electromagnetically induced transparency in spherical quantum dot with on-center hydrogen impurity. Optical and Quantum Electronics, 2020. 52(3): p. 1-10.
[29] Akankan, O., et al., The effects of geometrical shape and impurity position on the self-polarization of a donor impurity in an infinite GaAs/AlAs tetragonal quantum dot. Indian Journal of Physics, 2020: p. 1-4.
[30] Osorio, J.A., et al., Pyramidal core-shell quantum dot under applied electric and magnetic fields. Scientific Reports, 2020. 10(1): p. 8961.
[31] Zeiri, N., et al., Theoretical studies on third nonlinear optical susceptibility in CdTe–CdS–ZnS core–shell–shell quantum dots. Photonics and Nanostructures - Fundamentals and Applications 36 (2019) 100725.
[32] Naifar, A., et al., Dielectric environment effect on linear and nonlinear optical properties for CdS/ZnS core/shell quantum dots. Results in Physics, 2019. 14: p. 102513.
[33] Ghosh, A.P., et al., Influence of position-dependent effective mass on the nonlinear optical properties of impurity doped quantum dots in presence of Gaussian white noise. Optics Communications, 2016. 367: p. 325-334.
[34] Hasanirokh, K., A. Asgari, and M.M. Rokhi, Theoretical study on nonlinear optical properties of CdS/ZnS spherical quantum dots. Optik, 2019. 188: p. 99-103.
[35] Zeiri, N., et al., Theoretical investigation on linear and nonlinear dielectric function for GaN/AlxGa1− xN core/shell quantum dots. Materials Science and Engineering: B, 2020. 261: p. 114675.
[36] Vahdani, M. and N. Ehsanfard, Nonlinear optical properties of a slab of CdSe/ZnS quantum dot matrix. Physica B: Condensed Matter, 2018. 548: p. 1-9.
[37] Mathe, L., et al., Linear and nonlinear optical properties in spherical quantum dots: Inversely quadratic Hellmann potential. Physics Letters A, 2021. 379: p. 1-10.
[38] Stojanović, D. and R. Kostić, Hydrogenic impurity states in the spherical CdSe/ZnS/CdSe nanoheterostructure. Optical and Quantum Electronics, 2016. 48(4): p. 226.
[39] I. Gerdova and A. Hach, Third-order non-linear spectroscopy of CdSe and CdSe/ZnS core shell quantum dots. Optics Communications, 2005. 243: p. 205-212.
[40] A. Sabah., et al., Investigation of band parameters and electrochemical analysis of multi core-shell CdSe/CdS/ZnS quantum dots. Optical Materials, 2023. 142: p. 114065.
[41] M. Hu., et al., A fluorescent lateral flow immunoassay based on CdSe/CdS/ZnS quantum dots for sensitive detection of olaquindox in feedstuff. Food Chemistry, 2023. 419: p. 136025.
[42] X. Cao., et al., High-performance luminescent solar concentrators based on the core/shell CdSe/ZnS quantum dots composed into thiol-ene polymer. Journal of Luminescence, 2022. 252: p. 119368.