Li2O和Bi2O3共掺磷酸锌玻璃纳米复合材料的电导和光学特性:混合离子电子效应的关键观察

IF 2.8 3区 物理与天体物理 Q2 PHYSICS, CONDENSED MATTER Physica B-condensed Matter Pub Date : 2024-10-04 DOI:10.1016/j.physb.2024.416587
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引用次数: 0

摘要

本报告深入研究了在化学成分为 xLi2O-(0.45-x)Bi2O3-(0.15ZnO-0.40P2O5)(x = 0.05、0.15、025 和 0.35 mol%)的玻璃基体中共同掺杂金属氧化物 (Bi2O3) 和锂氧化物 (Li2O) 的综合效应。FESEM 和 X 射线衍射数据证实了所研究的玻璃状复合材料的结晶性质。获得的带隙能值从 (3.68-3.17) eV 下降到 (3.68-3.17)eV,而乌巴赫能值从 (0.38-0.27) eV 下降到 (0.38-0.27)eV。此外,还利用阿尔蒙德-韦斯特形式主义和容舍尔普遍幂律分析了交流导电性的机理。在玻璃样品中观察到的交流和直流电导率的上升归因于混合离子电子效应。在离子扩散模型中,缺陷点浓度的增加会促进 Li+ 离子通过渗流通道迁移。静电结合能和应变能的降低降低了安德森-斯图尔特活化能,从而促进了 Li+ 离子迁移并提高了导电性。此外,在小极子跳跃模型中,缺陷态密度的增加表明有更多的缺陷点可促进电子跳跃,从而产生深局部态以及局部态和扩展态之间的跃迁。用锂原子取代铋原子,增加了非桥接氧的数量,从而增强了导带尾部,降低了跳电所需的能量,提高了导电性。
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Electrical conduction and optical characteristics of Li2O and Bi2O3 Co-doped zinc-phosphate glassy nanocomposites: A critical observation of mixed ionic electronic effect
In the present report, the combined effects of the co-doping of metal oxide (Bi2O3) and Lithium oxide (Li2O) into the glassy matrix with chemical composition xLi2O-(0.45-x)Bi2O3-(0.15ZnO-0.40P2O5) (x = 0.05, 0.15, 025, and 0.35 mol%) are investigated thoroughly. The FESEM and X-ray diffraction data affirm the crystalline nature of the studied glassy composites. The obtained band gap energy values are declined from (3.68–3.17) eV, while the Urbach energy values are declined from (0.38–0.27) eV. Moreover, the mechanism responsible for AC conductivity has been analyzed using Almond–West formalism and Jonscher's universal power law. The observed rise in both AC and DC conductivity in the glass samples is attributed to the mixed ionic electronic effect. In the ionic diffusion model, an increased defect site concentration improves Li+ ion migration through percolation channels. The reduction in both electrostatic binding energy and strain energy lowers the Anderson-Stuart activation energy, facilitating Li+ ion migration and enhancing conductivity. Additionally, in the small polaron hopping model, an increase in the density of defect states suggests more defect sites that facilitate electronic hopping, creating deep localized states and transitions between localized and extended states. Replacing a Bismuth atom with a Lithium atom increases the number of non-bridging oxygen, enhancing the conduction band tail, reducing the energy needed for hopping conductivity, and increasing conductivity.
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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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