基于ALMO/DFT的各向同性和各向异性极化力场对有机半导体载流子稳定性的基准测试。

IF 2.8 2区 化学 Q3 CHEMISTRY, PHYSICAL
Qianqian Jin, Tao Xu*, Changwei Wang and Shiwei Yin*, 
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引用次数: 0

摘要

有机半导体中载流子能量学的精确建模对于理解和优化其在光电器件中的性能至关重要。在这项工作中,我们采用密度泛函理论(DFT)中的绝对定域分子轨道(ALMO)方法作为量子力学基准来评估在AMOEBA极化力场(PFF)中实现的各向同性(ISO)和各向异性(ANISO)极化模型的性能。通过分析一组具有代表性的p型和n型有机半导体的块状(中心位置)和表面(边缘位置)簇结构,我们评估了每种模型重现基于almo的视极化能的能力。我们的研究结果表明,由于各向异性极化效应的抑制,ISO和ANISO模型在中心对称(体状)环境中具有相当的精度。然而,在分子表面或异质结界面等不对称配置中,ANISO模型明显优于ISO模型,在这些配置中,方向相关的极化变得不可忽略。基于almo的能量分解分析(ALMO-EDA)表明,极化相互作用是凝聚相输运间隙的主要贡献。这一发现为只考虑极化效应来估计输运间隙提供了一个简化的理论框架。总的来说,本研究建立了ALMO方法作为评价极化模型的参考的可靠性,并强调了将力场中的各向异性极化率纳入有机材料中电荷局域化和输运现象精确建模的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Benchmarking Isotropic and Anisotropic Polarization Force Fields against ALMO/DFT for Charge Carrier Stabilization in Organic Semiconductors

Benchmarking Isotropic and Anisotropic Polarization Force Fields against ALMO/DFT for Charge Carrier Stabilization in Organic Semiconductors

Accurate modeling of charge carrier energetics in organic semiconductors is essential for understanding and optimizing their performance in optoelectronic devices. In this work, we employ the absolutely localized molecular orbital (ALMO) method within density functional theory (DFT) as a quantum mechanical benchmark to evaluate the performance of isotropic (ISO) and anisotropic (ANISO) polarization models implemented in the AMOEBA polarizable force field (PFF). By analyzing a set of representative p-type and n-type organic semiconductors in both bulk-like (center-site) and surface-like (edge-site) cluster configurations, we assess the ability of each model to reproduce ALMO-based apparent polarization energies. Our results show that both ISO and ANISO models yield comparable accuracy in centrosymmetric (bulk-like) environments due to the suppression of anisotropic polarization effects. However, the ANISO model significantly outperforms the ISO model in asymmetric configurations, such as at molecular surfaces or heterojunction interfaces, where direction-dependent polarization becomes non-negligible. ALMO-based energy decomposition analysis (ALMO-EDA) reveals that polarization interactions are the dominant contribution to the transport gap in the condensed phase. This finding provides a simplified theoretical framework for estimating the transport gap by considering only polarization effects. Overall, this study establishes the reliability of the ALMO method as a reference for evaluating polarization models and highlights the importance of incorporating anisotropic polarizability in force fields for accurate modeling of charge localization and transport phenomena in organic materials.

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来源期刊
The Journal of Physical Chemistry A
The Journal of Physical Chemistry A 化学-物理:原子、分子和化学物理
CiteScore
5.20
自引率
10.30%
发文量
922
审稿时长
1.3 months
期刊介绍: The Journal of Physical Chemistry A is devoted to reporting new and original experimental and theoretical basic research of interest to physical chemists, biophysical chemists, and chemical physicists.
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