Wahab Alexandra, Gershoni-Poranne Renana
Laboratory for Organic Chemistry, Department of Chemistry and Applied Biosciences, ETH Zurich, 8093 Zurich, Switzerland.
Schulich Faculty of Chemistry, Technion - Israel Institute of Technology, Haifa 32000, Israel.
Phys Chem Chem Phys. 2025 Mar 19;27(12):5973-5983. doi: 10.1039/d4cp04059g.
Polybenzenoid hydrocarbons (PBHs) have garnered significant attention in the field of organic electronics due to their unique electronic properties. To facilitate the design and discovery of new functional organic materials based on these compounds, it is necessary to assess their diradical character. However, this usually requires expensive multireference calculations. In this study, we demonstrate rapid identification and quantification of open-shell character in PBHs using the fractional occupation number weighted electron density metric () calculated with the semiempirical GFN2-xTB (xTB) method. We apply this approach to the entire chemical space of PBHs containing up to 10 rings, a total of over 19k molecules, and find that approximately 7% of the molecules are identified as having diradical character. Our findings reveal a strong correlation between xTB-calculated and the more computationally expensive Yamaguchi and DFT-calculated , validating the use of this efficient method for large-scale screening. Additionally, we identify a linear relationship between size and value and implement a size-dependent threshold for open-shell character, which significantly improves the accuracy of diradical identification across the chemical space of PBHs. This size-aware approach reduces false positive identifications from 6.97% to 0.38% compared to using a single threshold value. Overall, this work demonstrates that xTB-calculated provides a rapid and cost-effective alternative for large-scale screening of open-shell character in PBHs.
多苯型碳氢化合物(PBHs)因其独特的电子性质在有机电子领域备受关注。为了便于基于这些化合物设计和发现新型功能有机材料,有必要评估它们的双自由基特性。然而,这通常需要昂贵的多参考计算。在本研究中,我们展示了使用半经验GFN2-xTB(xTB)方法计算的分数占据数加权电子密度度量()对PBHs中的开壳特性进行快速识别和量化。我们将这种方法应用于包含多达10个环、总共超过19k个分子的PBHs的整个化学空间,发现约7%的分子被鉴定为具有双自由基特性。我们的研究结果揭示了xTB计算的与计算成本更高的Yamaguchi和DFT计算的之间的强相关性,验证了这种高效方法用于大规模筛选的有效性。此外,我们确定了尺寸与值之间的线性关系,并实施了开壳特性的尺寸依赖性阈值,这显著提高了PBHs化学空间中双自由基识别的准确性。与使用单一阈值相比,这种尺寸感知方法将误报率从6.97%降低到0.38%。总体而言,这项工作表明xTB计算的为大规模筛选PBHs中的开壳特性提供了一种快速且经济高效的替代方法。