Bisong Emmanuel A, Louis Hitler, Unimuke Tomsmith O, Odey Joseph O, Ubana Emmanuel I, Edim Moses M, Tizhe Fidelis Timothy, Agwupuye John A, Utsu Patrick M
Department of Pure and Applied Chemistry, Faculty of Physical Sciences, University of Calabar, Calabar, Cross River State, Nigeria.
Computational Quantum Chemistry Research Group, Department of Pure and Applied Chemistry, Faculty of Physical Sciences, University of Calabar, Calabar, Cross River State, Nigeria.
Heliyon. 2020 Dec 23;6(12):e05783. doi: 10.1016/j.heliyon.2020.e05783. eCollection 2020 Dec.
This study explains the vibration and interaction of p-xylene and effect of three elements (fluorine, chlorine and bromine) of the halogen family substitution on it. Basic chemistry of four, compounds p-xylene (PX); 3,6-diflouro-p-xylene (DFPX); 3,6-dichloro-p-xylene (DCPX) and 3,6-dibromo-p-xylene (DBPX) has been explained extensively using theoretical approach. Vibrational energy distribution analysis (VEDA) software was used to study the potential energy distribution (PED) analysis, bond length, bond angles and dihedral angles of PX, DFPX, DCPX, DBPX after optimization with GAUSSIAN 09 software. The trend in chemical reactivity and stability of the studied compounds was observed to show increasing stability and decreasing reactivity moving from DBPX, DCPX, DFPX to PX and this was obtained from the calculated highest occupied molecular orbital (HOMO) and lowest unoccupied molecular orbital (LUMO) values. Our results show that PX is the best electron donor (best nucleophile) while DBPX is the best electron acceptor (the best electrophile). We also observed that the substituted halogen increases the value of the bond angles but the effect is reduced as the size of the halogen increases. The maximum intensity and the frequency value for the maximum intensity of the different compounds was determined using the VEDA 04 software From our natural bond orbital (NBO) 7.0 program analysis, the studied compounds are said to show biological activities as well as the intramolecular hyperconjugative interactions responsible for stabilizing the compounds. The NBO results also revealed that the non-bonding interaction existing between the lone pair electron on the halogen atoms and the aromatic ring increases the stability of the halogen substituted para-xylene molecules. Multiwfn: A Multifunctional Wavefunction Analyzer was used for the spectroscopic plots.
本研究解释了对二甲苯的振动和相互作用,以及卤素族中氟、氯、溴三种元素取代对其的影响。利用理论方法广泛解释了四种化合物对二甲苯(PX)、3,6 - 二氟对二甲苯(DFPX)、3,6 - 二氯对二甲苯(DCPX)和3,6 - 二溴对二甲苯(DBPX)的基础化学。使用振动能量分布分析(VEDA)软件,通过GAUSSIAN 09软件优化后,研究了PX、DFPX、DCPX、DBPX的势能分布(PED)分析、键长、键角和二面角。观察到所研究化合物的化学反应性和稳定性趋势表明,从DBPX、DCPX、DFPX到PX,稳定性增加,反应性降低,这是通过计算最高占据分子轨道(HOMO)和最低未占据分子轨道(LUMO)值得到的。我们的结果表明,PX是最佳电子供体(最佳亲核试剂),而DBPX是最佳电子受体(最佳亲电试剂)。我们还观察到,取代的卤素会增加键角的值,但随着卤素原子尺寸的增加,这种影响会减小。使用VEDA 04软件确定了不同化合物的最大强度及其最大强度的频率值。根据我们的自然键轨道(NBO)7.0程序分析,所研究的化合物据说具有生物活性以及负责稳定化合物的分子内超共轭相互作用。NBO结果还表明,卤素原子上孤对电子与芳环之间存在的非键相互作用增加了卤素取代对二甲苯分子的稳定性。使用多功能波函数分析器Multiwfn进行光谱图绘制。