设计高效石墨烯/黑磷/石墨氧化锌范德华异质结构以增强光电性能:第一性原理研究

IF 3.9 Q3 PHYSICS, CONDENSED MATTER
Hao Zhang, Rasool Akhtar Alias Osama, Rebecca Cheung
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引用次数: 0

摘要

二维(2D)范德华异质结构由于其独特的电子和光学特性而成为下一代光电器件的有前途的平台。在这项研究中,我们使用密度泛函理论(DFT)和在CASTEP中实现的GGA-PBE泛函来研究由石墨氧化锌(G - zno)、黑磷(BP)和石墨烯(G)组成的新型三层异质结构。优化后的结构晶格错配率低于5%,层间结合能稳定在33.5 meV /原子。900 K下的分子动力学模拟表明,与BP/g-ZnO双分子层相比,石墨烯的掺入增强了热稳定性,显著抑制了温度引起的波动。电子结构分析表明,BP/ G - zno和G/BP/ G - zno体系均具有i型取向的直接带隙。重要的是,石墨烯通过轨道杂化、层间相互作用和应变效应在费米能级附近引入了额外的电子态,破坏了狄拉克点并增强了载流子输运。光学性质分析表明,G/BP/ G - zno异质结构在较宽的光谱范围内表现出红移的吸收峰和改善的吸收系数,导致光电流产生和器件效率从3.5%提高到14.7%。这些发现突出了这种异质结构在高性能光电应用中的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Designing a high-efficiency graphene/black phosphorus/graphitic ZnO van der Waals heterostructure for enhanced optoelectronic performance: A first-principles study
Two-dimensional (2D) van der Waals heterostructures are promising platforms for next-generation optoelectronic devices due to their unique electronic and optical properties. In this study, we use density functional theory (DFT) with the GGA-PBE functional implemented in CASTEP to investigate a novel three-layer heterostructure composed of graphitic zinc oxide (g-ZnO), black phosphorus (BP), and graphene (G). The optimized structure shows lattice mismatches below 5 % and a stable interlayer binding energy of 33.5 meV per atom. Molecular dynamics simulations at 900 K demonstrate enhanced thermal stability due to graphene incorporation, significantly suppressing temperature-induced fluctuations compared to BP/g-ZnO bilayers. Electronic structure analyses reveal direct band gaps with type-I alignment for both BP/g-ZnO and G/BP/g-ZnO systems. Importantly, graphene introduces additional electronic states near the Fermi level through orbital hybridization, interlayer interactions and strain effects, disrupting the Dirac point and enhancing carrier transport. Optical properties analysis indicates that the G/BP/g-ZnO heterostructure exhibits red-shifted absorption peaks and improved absorption coefficients across a broad spectral range, leading to increased photocurrent generation and device efficiency from 3.5 % up to 14.7 %. These findings highlight the potential of this heterostructure for high-performance optoelectronic applications.
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来源期刊
Computational Condensed Matter
Computational Condensed Matter PHYSICS, CONDENSED MATTER-
CiteScore
3.70
自引率
9.50%
发文量
134
审稿时长
39 days
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