Ghosh Avik, Banerjee Soumadip, Debnath Tanay, Das Abhijit K
School of Mathematical & Computational Sciences, Indian Association for the Cultivation of Science, Jadavpur, Kolkata-700032, India.
Phys Chem Chem Phys. 2022 Feb 9;24(6):4022-4041. doi: 10.1039/d1cp05770g.
Mechanistic investigations into the functionalization of three fullerene cages, C, C, and C through dehydrogenation of ammonia-borane (AB) have been conducted using Density Functional Theory (DFT). In this process of functionalization, different ring fusions, namely (6-6), (6-5) positions for C and C, and an additional (5-5) for C fullerene have been investigated. The optimized geometries of all the complexes and transition states have been characterized using the M06-2X functional in conjunction with the 6-31G(d) basis set. The effect of Li-encapsulation on the energetics and activation barriers of H attachment has also been examined. Although the process of functionalization of neutral fullerenes proceeds extensively through concerted pathways, a step-wise route has been observed for the encapsulated systems. NPA charge analysis and Wiberg bond index (WBI) have been used in order to detect the change in the nature of participating hydrogen atoms and validate the variation in the bond order of the C-C connectivity respectively upon hydrogenation. GCRD parameters have also been calculated to explicate the electronic properties of the hydrogenated products. The (6-6) hydrogenation is observed to be favoured thermodynamically and kinetically for both neutral and Li-encapsulated C and C, while (5-5) is found to be the most preferred site for C systems. Our theoretical exploration suggests that the covalent functionalization of the fullerene cages can be done successfully AB resulting in the stabilization of these systems. In short, the present work will provide a general idea about the detailed mechanism related to the functionalization of fullerene cages, which will further motivate researchers in fullerene chemistry.
利用密度泛函理论(DFT)对通过氨硼烷(AB)脱氢实现的三种富勒烯笼C、C和C的功能化进行了机理研究。在这个功能化过程中,研究了不同的环融合,即C和C的(6-6)、(6-5)位置,以及C富勒烯的额外(5-5)位置。所有配合物和过渡态的优化几何结构均使用M06-2X泛函结合6-31G(d)基组进行了表征。还研究了锂封装对氢附着的能量和活化势垒的影响。尽管中性富勒烯的功能化过程广泛通过协同途径进行,但对于封装体系观察到了分步路线。使用自然键轨道(NPA)电荷分析和维伯格键指数(WBI)分别检测参与氢原子性质的变化,并验证氢化后C-C连接性键级的变化。还计算了广义电荷重分布(GCRD)参数以阐明氢化产物的电子性质。对于中性和锂封装的C和C,(6-6)氢化在热力学和动力学上均受青睐,而(5-5)被发现是C体系最优选的位点。我们的理论探索表明,富勒烯笼的共价功能化可以通过AB成功实现,从而使这些体系稳定。简而言之,本工作将提供有关富勒烯笼功能化详细机制的总体思路,这将进一步激发富勒烯化学领域的研究人员。