Jiang Zhen, Intan Nadia N, Yang Qiong
Department of Chemistry, University of Pennsylvania Philadelphia PA 19104-6323 USA
Department of Chemical and Biomolecular Engineering, University of Nebraska-Lincoln Lincoln NE 68588 USA.
RSC Adv. 2022 Nov 22;12(52):33552-33558. doi: 10.1039/d2ra06123f.
The extreme surface reactivity of 4 Å single-walled carbon nanotubes (SWCNTs) makes for a very promising catalytic material, however, controlling it experimentally has been found to be challenging. Here, we employ calculations to investigate the extent of surface reactivity and functionalization of 4 Å SWCNTs. We study the kinetics of water dissociation and adsorption on the surface of 4 Å SWCNTs with three different configurations: armchair (3,3), chiral (4,2) and zigzag (5,0). We reveal that out of three different configurations of 4 Å SWCNTs, the surface of tube (5,0) is the most reactive due to its small HOMO-LUMO gap. The dissociation of 1 HO molecule into an OH/H pair on the surface of tube (5,0) has an adsorption energy of -0.43 eV and an activation energy barrier of 0.66 eV at 298.15 K in pure aqueous solution, which is less than 10% of the activation energy barrier of the same reaction without the catalyst present. The four steps of H/e transfer in the oxygen evolution reaction have also been studied on the surface of tube (5,0). The low overpotential of 0.38 V indicates that tube (5,0) has the highest potential efficiency among all studied carbon-based catalysts. We also reveal that the armchair edge of tube (5,0) is reconstructed into fullerene C. The dangling bonds on the surface of fullerene C result in a more reactive surface than the basal surface of tube (5,0), however the catalytic ability was also inhibited in the later oxygen reduction processes.
4 Å 单壁碳纳米管(SWCNTs)极高的表面反应活性使其成为一种非常有前景的催化材料,然而,实验发现控制其反应活性具有挑战性。在此,我们采用计算方法来研究 4 Å SWCNTs 的表面反应活性程度和功能化情况。我们研究了水分子在具有三种不同构型的 4 Å SWCNTs 表面解离和吸附的动力学,这三种构型分别为扶手椅型(3,3)、手性型(4,2)和锯齿型(5,0)。我们发现,在 4 Å SWCNTs 的三种不同构型中,(5,0)管的表面反应活性最高,这是由于其较小的最高占据分子轨道(HOMO)-最低未占据分子轨道(LUMO)能隙。在纯水溶液中,298.15 K 时,1 个 HO 分子在(5,0)管表面解离为 OH/H 对的吸附能为 -0.43 eV,活化能垒为 0.66 eV,这不到无催化剂存在时相同反应活化能垒的 10%。我们还研究了(5,0)管表面析氧反应中氢/电子转移的四个步骤。0.38 V 的低过电位表明(5,0)管在所有研究的碳基催化剂中具有最高的潜在效率。我们还发现(5,0)管的扶手椅边缘重构为富勒烯 C。富勒烯 C 表面的悬空键导致其表面比(5,0)管的基面更具反应活性,然而在后续的氧还原过程中催化能力也受到了抑制。