研究掺杂铅对圆柱形 CdS 的结构、电子、磁性和光学特性的影响

IF 2.8 3区 物理与天体物理 Q2 PHYSICS, CONDENSED MATTER Physica B-condensed Matter Pub Date : 2024-09-13 DOI:10.1016/j.physb.2024.416517
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引用次数: 0

摘要

本研究采用 GGA-PBE+U 近似的第一原理方法,重点全面研究了纯 CdS 和掺杂 Pb 的 CdS 在不同浓度下的晶体结构、电子、磁性和光学特性。我们的计算结果成功地再现了实验观察到的纯 CdS 和掺铅 CdS 系统的优化晶格参数和带隙值。带状结构结果显示,在低浓度下,掺杂铅的 CdS 的带隙显著减小,而在高浓度下则稳步增大。电子密度分布显示了 Cd-S 和 Pb-S 之间的共价性质。纯 CdS 和掺杂 Pb 的 CdS 的光学特性显示:随着掺杂的增加,可见光和紫外光域的吸收率和反射率显著增加。最后,在可见光能域的光学透射率降低。这些光学分析提供了有关这些材料行为的重要信息,从而拓宽了它们的实际应用,特别是在光电设备的设计方面。
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Investigating the effect of Pb doping on the structural, electronic, magnetic, and optical properties of wurtzite CdS

This study focuses on comprehensively investigating the crystal structure, electronic, magnetic and optical properties of pure and Pb-doped CdS at different concentrations using first-principles methods with the GGA-PBE+U approximation. Our calculations successfully reproduce the experimentally observed optimized lattice parameters and band gap values for both pure and Pb-doped CdS systems. Band structure results show a large and significant reduction in the band gap of Pb-doped CdS at low concentrations, followed by a steady increase at high Pb concentrations. The electron density distribution show the covalent nature between Cd-S and Pb-S. The optical properties of pur and Pb-doped CdS show: a significant increase in absorption and in reflectivity in the visible and ultraviolet domains with doping. Finally, a reduction in optical transmission in the visible energy domain. These optical analyzes provide essential information on the behavior of these materials, thus broadening its practical applications, notably in the design of optoelectronic devices.

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来源期刊
Physica B-condensed Matter
Physica B-condensed Matter 物理-物理:凝聚态物理
CiteScore
4.90
自引率
7.10%
发文量
703
审稿时长
44 days
期刊介绍: Physica B: Condensed Matter comprises all condensed matter and material physics that involve theoretical, computational and experimental work. Papers should contain further developments and a proper discussion on the physics of experimental or theoretical results in one of the following areas: -Magnetism -Materials physics -Nanostructures and nanomaterials -Optics and optical materials -Quantum materials -Semiconductors -Strongly correlated systems -Superconductivity -Surfaces and interfaces
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