Wu Da, Zhao Zhengpu, Lin Bo, Song Yizhi, Qi Jiajie, Jiang Jian, Yuan Zifeng, Cheng Bowei, Zhao Mengze, Tian Ye, Wang Zhichang, Wu Muhong, Bian Ke, Liu Kai-Hui, Xu Li-Mei, Zeng Xiao Cheng, Wang En-Ge, Jiang Ying
International Center for Quantum Materials, School of Physics, Peking University, Beijing 100871, China.
Department of Materials Science and Engineering, City University of Hong Kong, Hong Kong 999077, China.
Science. 2024 Jun 14;384(6701):1254-1259. doi: 10.1126/science.ado1544. Epub 2024 Jun 13.
Low-dimensional water transport can be drastically enhanced under atomic-scale confinement. However, its microscopic origin is still under debate. In this work, we directly imaged the atomic structure and transport of two-dimensional water islands on graphene and hexagonal boron nitride surfaces using qPlus-based atomic force microscopy. The lattice of the water island was incommensurate with the graphene surface but commensurate with the boron nitride surface owing to different surface electrostatics. The area-normalized static friction on the graphene diminished as the island area was increased by a power of ~-0.58, suggesting superlubricity behavior. By contrast, the friction on the boron nitride appeared insensitive to the area. Molecular dynamic simulations further showed that the friction coefficient of the water islands on the graphene could reduce to <0.01.
在原子尺度限制下,低维水传输可得到显著增强。然而,其微观起源仍存在争议。在这项工作中,我们使用基于qPlus的原子力显微镜直接成像了石墨烯和六方氮化硼表面上二维水岛的原子结构和传输情况。由于表面静电不同,水岛的晶格与石墨烯表面不匹配,但与氮化硼表面匹配。随着岛面积以约-0.58的幂次增加,石墨烯上面积归一化的静摩擦力减小,表明存在超润滑行为。相比之下,氮化硼上的摩擦力对面积不敏感。分子动力学模拟进一步表明,石墨烯上水岛的摩擦系数可降至<0.01。