Sun Xiaoyan, Li Dongdong, Gao Wei, Yin Hong
State Key Lab of Superhard Materials, College of Physics, Jilin University, Changchun 130012, People's Republic of China.
Nanotechnology. 2021 Feb 5;32(6):065601. doi: 10.1088/1361-6528/abc387.
The capability of hexagonal boron nitride (h-BN) to adsorb gas atoms may stimulate various promising applications in environment remediation and energy storage, while the interactivity with gas molecules yet remains challenging due to its inherent chemical inertness. In this article, we report a feasible and effective route for the scalable synthesis of vertically aligned h-BN nanowalls assisted by reduced graphene oxide (rGO) without metallic catalysts. The average thickness of the fine h-BN nanowalls is few-atomic layers about 3.7 nm, that grow on the large substrate-like flakes transformed from the pristine rGO. The hierarchical h-BN nanowalls exhibit an enhanced gas adsorption performance, not only through physisorption owing to the synergistic combination of different porous geometries, but also through chemisorption via the open edge groups. Moreover, it demonstrates a significantly enhanced adsorption of CO over CH as compared to the h-BN nanosheets with similar sizes. Density functional theory calculations reveal that the -OH edge groups can effectively increase the adsorption capability towards CO, accompanied by a shortened adsorption distance when the gas molecule is energetically stabilized. The wetting characteristics of h-BN nanowalls was further examined by contact angle goniometry.
六方氮化硼(h-BN)吸附气体原子的能力可能会在环境修复和能量存储方面催生出各种有前景的应用,然而,由于其固有的化学惰性,h-BN与气体分子的相互作用仍然具有挑战性。在本文中,我们报道了一种可行且有效的路线,用于在无金属催化剂的情况下,通过还原氧化石墨烯(rGO)辅助可扩展地合成垂直排列的h-BN纳米壁。精细的h-BN纳米壁的平均厚度为几个原子层,约3.7纳米,它们生长在由原始rGO转变而来的类似大尺寸基底的薄片上。分层的h-BN纳米壁不仅通过不同多孔几何结构的协同组合实现物理吸附,还通过开放边缘基团实现化学吸附,从而展现出增强的气体吸附性能。此外,与尺寸相似的h-BN纳米片相比,它对CO的吸附能力明显增强。密度泛函理论计算表明,-OH边缘基团可以有效提高对CO的吸附能力,当气体分子能量稳定时,吸附距离会缩短。通过接触角测量法进一步研究了h-BN纳米壁的润湿性。