揭示BiOBr、BiOI和BiOBr - BiOI异质结构中载流子输运的极化效应

IF 5.5 3区 材料科学 Q2 CHEMISTRY, PHYSICAL
Pathipat Latthiwan, Tanveer Hussain, Anusit Thongnum, Udomsilp Pinsook, Suwat Nanan, Pairot Moontragoon, Supree Pinitsoontorn and Thanayut Kaewmaraya*, 
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引用次数: 0

摘要

氧化卤化铋;X = Br, I)是具有吸引人的电子和光学性质的半导体。然而,这些离子化合物中的电荷传输主要是由极化子形成主导的,这一点仍然没有得到充分的了解。本文采用密度泛函微扰理论(DFPT)研究了BiOBr、BiOI及其bibr - BiOI异质结构中载流子输运的极化效应。我们计算了一套全面的输运相关性质,包括能带结构、有效质量、介电常数、声子色散、电子-声子耦合强度,以及极化和总载流子迁移率。结果表明,所有系统都表现出由载流子和纵向光学声子模式之间的中间耦合引起的各向异性大极化子行为。电子极化子沿[100]和[010]方向表现出高迁移率,而空穴极化子则优先沿层状[001]轴移动。在bibr - bioi异质结构中,由于界面偶极子场引起的更强的电子-声子耦合,电子和空穴的迁移率都相对降低。通过结合各种载流子散射机制,包括声变形势、电离杂质和大极化子,我们计算了载流子迁移率,与现有的BiOI实验数据非常吻合。我们的研究为氧化卤化铋及其异质结构中的极化子辅助电荷输运提供了详细的见解,为高效光电和能源器件的设计提供了指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Unveiling Polaronic Effects on Carrier Transport in BiOBr, BiOI, and BiOBr–BiOI Heterostructures

Bismuth oxyhalides (BiOX; X = Br, I) are semiconductors with attractive electronic and optical properties. However, charge transport in these ionic compounds is predominantly dominated by polaron formation, which is still insufficiently understood. Herein, we employ density functional perturbation theory (DFPT) to investigate polaronic effects on carrier transport in BiOBr, BiOI, and their BiOBr–BiOI heterostructure. We compute a comprehensive set of transport-relevant properties, including band structures, effective masses, dielectric constants, phonon dispersions, electron–phonon coupling strengths, and both polaronic and total carrier mobilities. The results show that all systems exhibit anisotropically large polaron behavior arising from intermediate coupling between carriers and longitudinal optical phonon modes. Electron polarons show high mobility along the [100] and [010] directions, while hole polarons preferentially move along the layered [001] axis. In the BiOBr–BiOI heterostructure, both electron and hole mobilities are relatively reduced due to stronger electron–phonon coupling induced by interfacial dipole fields. By incorporating various carrier scattering mechanisms, including acoustic deformation potential, ionized impurities, and large polarons, we calculate carrier mobilities in close agreement with available experimental data of BiOI. Our study provides detailed insight into polaron-assisted charge transport in bismuth oxyhalides and their heterostructures, offering guidance for the design of efficient optoelectronic and energy devices.

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来源期刊
ACS Applied Energy Materials
ACS Applied Energy Materials Materials Science-Materials Chemistry
CiteScore
10.30
自引率
6.20%
发文量
1368
期刊介绍: ACS Applied Energy Materials is an interdisciplinary journal publishing original research covering all aspects of materials, engineering, chemistry, physics and biology relevant to energy conversion and storage. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important energy applications.
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