Wang Tingting, Zhan Lingtao, Zhang Teng, Li Yan, Fan Haolong, Cao Xiongbai, Zhou Zhenru, Yu Qinze, Grazioli Cesare, Yang Huixia, Zhang Quanzhen, Wang Yeliang
School of Integrated Circuits and Electronics & Yangtze Delta Region Academy, Beijing Institute of Technology (BIT), Beijing 100081, China.
CNR-Istituto Officina dei Materiali (IOM), S.S. 14 km 163.5, 34149 Trieste, Italy.
Nanomaterials (Basel). 2025 Jun 8;15(12):888. doi: 10.3390/nano15120888.
This review provides a comprehensive overview of recent advances in atomic-scale manipulation of two-dimensional (2D) materials, particularly graphene and transition metal dichalcogenides (TMDs), using scanning tunneling microscopy (STM). STM, originally developed for high-resolution imaging, has evolved into a powerful tool for precise manipulation of 2D materials, enabling translational, rotational, folding, picking, and etching operations at the nanoscale. These manipulation techniques are critical for constructing custom heterostructures, tuning electronic properties, and exploring dynamic behaviors such as superlubricity, strain engineering, phase transitions, and quantum confinement effects. We detail the fundamental mechanisms behind STM-based manipulations and present representative experimental results, including stress-induced bandgap modulation, tip-induced phase transformations, and atomic-precision nanostructuring. The versatility and cleanliness of STM offer unique advantages over conventional transfer methods, paving the way for innovative applications in nanoelectronics, quantum devices, and 2D material-based systems. Finally, we discuss current challenges and future prospects of integrating STM manipulation with advanced computational techniques for automated nanofabrication.
本综述全面概述了利用扫描隧道显微镜(STM)对二维(2D)材料,特别是石墨烯和过渡金属二硫属化物(TMDs)进行原子尺度操纵的最新进展。STM最初是为高分辨率成像而开发的,现已发展成为精确操纵二维材料的强大工具,能够在纳米尺度上进行平移、旋转、折叠、拾取和蚀刻操作。这些操纵技术对于构建定制异质结构、调节电子特性以及探索诸如超润滑性、应变工程、相变和量子限制效应等动态行为至关重要。我们详细阐述了基于STM操纵的基本机制,并展示了代表性的实验结果,包括应力诱导的带隙调制、针尖诱导的相变以及原子精度的纳米结构化。STM的多功能性和清洁性相对于传统转移方法具有独特优势,为纳米电子学、量子器件和基于二维材料的系统中的创新应用铺平了道路。最后,我们讨论了将STM操纵与先进计算技术集成以实现自动化纳米制造的当前挑战和未来前景。