Foadin Crevain Souop Tala, Nya Fridolin Tchangnwa, Ejuh Geh Wilson, Malloum Alhadji, Conradie Jeanet, Ndjaka Jean Marie
Materials Science Laboratory, Department of Physics, Faculty of Science, University of Maroua, P.O. Box 814, Maroua, Cameroon.
Department of Electrical and Electronic Engineering, National Higher Polytechnic Institute, University of Bamenda, P. O. Box 39, Bambili, Cameroon.
J Mol Model. 2020 Nov 4;26(11):327. doi: 10.1007/s00894-020-04592-1.
In this work, we propose a modified model of graphene oxide nanosheet (GON), based on the Lerf-Klinowski model, through which we attach a carboxyl group (GON-COOH) to the non-equivalent C atom of coronene-based graphene oxide with formation of sp3-like orbital bond. Beryllium, boron, nitrogen, oxygen, and fluorine atoms are integrated into the GON at identical sites in order to study their impact on the physical and chemical properties of GON. Our aim is to propose new efficient materials for applications in optoelectronics and nonlinear optics (NLO). Chemical reactivity and structural, optical, and nonlinear optical properties of GON and its derivatives GON-X (X: Be, B, N, O, and F atoms) were investigated by using the density functional theory (DFT) at the B3LYP-D3/6-31+G(d,p) level of theory. According to the results obtained, the binding energy per atom of GON compound decreases slightly with addition of atoms of the second period elements of the periodic table. The GON-F compound exhibits the smallest value of gap energy compared to other studied compounds and can then be considered a proficient candidate for photovoltaic applications. In regard to NLO properties, we found that the studied models of GON compound theoretically exhibit a larger value of the first static hyperpolarizability than urea, the reference compound for NLO properties.
在这项工作中,我们基于勒夫-克林诺夫斯基模型提出了一种氧化石墨烯纳米片(GON)的改进模型,通过该模型,我们将羧基(GON-COOH)连接到并苯型氧化石墨烯的不等价碳原子上,形成类似sp3的轨道键。将铍、硼、氮、氧和氟原子整合到GON的相同位点,以研究它们对GON物理和化学性质的影响。我们的目标是提出用于光电子学和非线性光学(NLO)应用的新型高效材料。使用密度泛函理论(DFT)在B3LYP-D3/6-31+G(d,p)理论水平上研究了GON及其衍生物GON-X(X:铍、硼、氮、氧和氟原子)的化学反应性以及结构、光学和非线性光学性质。根据所得结果,随着周期表第二周期元素原子的加入,GON化合物的每个原子的结合能略有降低。与其他研究的化合物相比,GON-F化合物表现出最小的能隙值,因此可被视为光伏应用的理想候选材料。关于非线性光学性质,我们发现所研究的GON化合物模型在理论上表现出比非线性光学性质的参考化合物尿素更大的第一静态超极化率值。