X-ray diffraction and Density Functional Theory based structural analyses of 2-phenyl-4-(prop-2-yn-1-yl)-1,2,4-triazolone

S. M. Somagond, Ahmedraza Mavazzan, Suresh F Madar, M. Sannaikar, Shankar Madan Kumar, S. Inamdar, A. Nesaragi, J. P. Dasappa, R. Kamble
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Abstract

This study is composed of X-ray diffraction and Density Functional Theory (DFT) based molecular structural analyses of 2-phenyl-4-(prop-2-yn-1-yl)-2,4-dihydro-3H-1,2,4-triazol-3-one (2PPT). Crystal data for C11H9N3O: Monoclinic, space group P21/c (no. 14), a = 7.8975(2) Å, b = 11.6546(4) Å, c = 11.0648(3) Å, β = 105.212(2)°, V = 982.74(5) Å3, Z = 4, T = 296.15 K, μ(MoKα) = 0.091 mm-1, Dcalc = 1.346 g/cm3, 13460 reflections measured (5.174° ≤ 2Θ ≤ 64.72°), 3477 unique (Rint = 0.0314, Rsigma = 0.0298) which were used in all calculations. The final R1 was 0.0470 (I > 2σ(I)) and wR2 was 0.1368 (all data). The experimentally determined data was supported by theoretically optimized calculations processed with the help of Hartree-Fock (HF) technique and Density Functional Theory with the 6-311G(d,p) basis set in the ground state. Geometrical parameters (Bond lengths and angles) as well as spectroscopic (FT-IR, 1H NMR, and 13C NMR) properties of 2PPT molecule has been optimized theoretically and compared with the experimentally obtained results. Hirshfeld surface analysis with 2D fingerprinting plots was used to figure out the possible and most significant intermolecular interactions. The electronic characterizations such as molecular electrostatic potential map (MEP) and Frontier molecular orbital (FMO) energies have been studied by DFT/B3LYP approach. The MEP imparted the detailed information regarding electronegative and electropositive regions across the molecule. The HOMO-LUMO energy gap as high as 5.3601 eV was found to be responsible for the high kinetic stability of the 2PPT.
基于x射线衍射和密度泛函理论的2-苯基-4-(丙-2-炔-1-基)-1,2,4-三唑酮的结构分析
本研究采用X射线衍射和密度泛函理论对2-苯基-4-(丙-2-炔-1-基)-2,4-二氢-3H-1,2,4-三唑-3-酮(2PPT)进行了分子结构分析。C11H9N3O的晶体数据:单斜晶系,空间群P21/c(编号14),a=7.8975(2)Å,b=111.6546所有计算。最终R1为0.0470(I>2σ(I)),wR2为0.1368(所有数据)。实验确定的数据得到了理论优化计算的支持,这些计算是在基态中使用6-311G(d,p)基的Hartree-Fock(HF)技术和密度泛函理论的帮助下进行的。从理论上优化了2PPT分子的几何参数(键长和角度)以及光谱(FT-IR、1H NMR和13C NMR)性质,并与实验结果进行了比较。Hirshfeld表面分析和2D指纹图谱被用于找出可能的和最重要的分子间相互作用。用DFT/B3LYP方法研究了分子静电势图(MEP)和前沿分子轨道(FMO)能量等电子特性。MEP提供了关于分子中电负性和正电性区域的详细信息。发现高达5.3601eV的HOMO-LUMO能隙是2PPT的高动力学稳定性的原因。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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