论文标题

扭曲的几层石墨烯中的域依赖性表面粘附:莫伊尔辅助化学平台

Domain-dependent surface adhesion in twisted few-layer graphene: Platform for moiré-assisted chemistry

论文作者

Hsieh, Valerie, Halbertal, Dorri, Finney, Nathan R., Zhu, Ziyan, Gerber, Eli, Pizzochero, Michele, Kucukbenli, Emine, Schleder, Gabriel R., Angeli, Mattia, Watanabe, Kenji, Taniguchi, Takashi, Kim, Eun-Ah, Kaxiras, Efthimios, Hone, James, Dean, Cory R., Basov, D. N.

论文摘要

扭曲的范德华多层被广泛认为是富含新型电子相的平台,这要归功于多个自由度,例如层厚度和扭曲角度,可以控制其电子和化学性质。在这里,我们提出,由于连续层之间的相对扭曲起来自然形成的堆叠结构域是控制这些系统行为的附加“旋钮”,并报告了在扭曲的几层石墨烯中堆叠域依赖性表面化学的出现和工程。使用中红外近场光学显微镜和原子力显微镜,我们观察到金属纳米颗粒和液体水的选择性粘附在域上具有微小扭曲的双层双层和三层石墨烯的菱形堆叠构型。此外,我们证明,位于某些堆叠结构域的纳米颗粒的操纵可以在其附近的Moiré超级晶格局部重新配置μm尺度。此外,我们报告了对堆叠结构域上金属原子和水分子粘附的能量学的第一原理模拟,以阐明观察到的选择性粘附的起源。我们的发现为控制Moiré辅助化学和纳米工程的新方法建立了新的方法。

Twisted van der Waals multilayers are widely regarded as a rich platform to access novel electronic phases, thanks to the multiple degrees of freedom such as layer thickness and twist angle that allow control of their electronic and chemical properties. Here, we propose that the stacking domains that form naturally due to the relative twist between successive layers act as an additional "knob" for controlling the behavior of these systems, and report the emergence and engineering of stacking domain-dependent surface chemistry in twisted few-layer graphene. Using mid-infrared near-field optical microscopy and atomic force microscopy, we observe a selective adhesion of metallic nanoparticles and liquid water at the domains with rhombohedral stacking configurations of minimally twisted double bi- and tri-layer graphene. Furthermore, we demonstrate that the manipulation of nanoparticles located at certain stacking domains can locally reconfigure the moiré superlattice in their vicinity at the μm-scale. In addition, we report first-principles simulations of the energetics of adhesion of metal atoms and water molecules on the stacking domains in an attempt to elucidate the origin of the observed selective adhesion. Our findings establish a new approach to controlling moiré-assisted chemistry and nanoengineering.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源