Wang Wen, Song Dongxing, Meng Fangjie, Fan Sufeng, Cai Ran, Cheng Shaobo, Shan Chongxin, Xu Tao, Zheng Haimei, Sun Litao
Henan Key Laboratory of Diamond Optoelectronic Materials and Devices, Key Laboratory of Materials Physics, Ministry of Education, and School of Physics, Zhengzhou University, Zhengzhou, 450052, China.
Engineering Technology Research Center of Henan Province for MEMS Manufacturing and Applications, School of Mechanics and Safety Engineering, Zhengzhou University, Zhengzhou, 450001, China.
Adv Sci (Weinh). 2025 Mar;12(12):e2412779. doi: 10.1002/advs.202412779. Epub 2025 Jan 31.
Cold welding of metals at the nanoscale has been demonstrated to play a significant role in bottom-up manufacturing and self-healing processes of nanostructures and nanodevices. However, the welding mechanism at the nanoscale is not well understood. In this study, a comprehensive demonstration of the cold welding process of gold nanorods with different modes is presented through in situ liquid cell transmission electron microscopy. The experimental results and molecular dynamics simulations reveal that the nanorods are welded through the facet-dependent atomic surface diffusion and rearrangement along {100} facets. The density functional theory calculations indicate that the preferred coalescence of two {100} surfaces is thermodynamically favorable. Unlike the prevalent "oriented attachment" in the nanoparticle coalescence, the misalignment of nanorod orientations and local stresses can induce grain boundaries and stacking faults in the welded interface.
纳米尺度下金属的冷焊接已被证明在纳米结构和纳米器件的自下而上制造及自修复过程中发挥着重要作用。然而,纳米尺度下的焊接机制尚未得到充分理解。在本研究中,通过原位液体池透射电子显微镜对不同模式的金纳米棒冷焊接过程进行了全面展示。实验结果和分子动力学模拟表明,纳米棒通过沿{100}面依赖于晶面的原子表面扩散和重排进行焊接。密度泛函理论计算表明,两个{100}表面的优先合并在热力学上是有利的。与纳米颗粒聚结中普遍存在的“定向附着”不同,纳米棒取向的错位和局部应力会在焊接界面诱导晶界和堆垛层错。