J. Mater. Sci. Technol. ›› 2026, Vol. 266: 92-103.DOI: 10.1016/j.jmst.2025.12.035

• Research article • Previous Articles     Next Articles

Atomistic insights of thermomechanical interfacial stripping—a pathway to low-damage femtosecond laser processing of layered materials

Huang Zhidonga,b,c, Feng Zeminga,b,c, Cai Yukuia,b,c,d,*, Zhang Tenge, Tang Yunqinga,b,c,d, Li Xinga,b,c,d, Liang Xiaolianga,b,c,d, Luo Xichunf, Liu Zhanqianga,b,c,d   

  1. aSchool of Mechanical Engineering, Shandong University, Jinan 250061, China;
    bShandong Key Laboratory of High Performance Tools and System, Jinan 250061, China;
    cKey Laboratory of High Efficiency and Clean Mechanical Manufacture of Ministry of Education, Jinan 250061, China;
    dState Key Laboratory of Advanced Equipment and Technology for Metal Forming, Shandong University, Jinan 250061, China;
    eAVIC Research Institute for Special Structures of Aeronautical Composite, Aviation Key Lab of Science and Technology on High Performance Electromagnetic Windows, Jinan 250023, China;
    fCentre for Precision Manufacturing, DMEM, University of Strathclyde, Glasgow G1 1XJ, United Kingdom
  • Received:2025-10-10 Revised:2025-12-22 Accepted:2025-12-22 Published:2026-09-20 Online:2025-12-25
  • Contact: *E-mail address: caiyukui@sdu.edu.cn (Y. Cai) .

Abstract: The micropatterning of multilayer composites enables advanced performance and tailored electromagnetic functionalities. However, precisely removing surface coatings while minimizing substrate damage remains a critical manufacturing challenge. Although femtosecond (fs) lasers are well-established for high-precision ablation with minimal thermal damage, their interactions with layered material interfaces are still poorly understood. Here, we investigate the mechanisms and process of the fs laser ablation of an aluminum film on a glass-fiber-reinforced polymer substrate. Using an extended two-temperature model-molecular dynamics framework for multilayer materials and in situ high-speed imaging of fs laser processing dynamics, we identify and validate a unique thermomechanical removal mechanism: interfacial stripping. Ultrashort laser pulses induce high compressive stresses that propagate into the material and reflect as tensile waves, exceeding the metal’s yield strength and causing spallation. The substrate is compressed near its elastic limit and rebounds, propelling the residual metal layer forward. Interfacial stripping occurs when the translational kinetic energy surpasses the interfacial bonding energy. Atomistic insights reveal that interfacial stripping minimizes the heat-affected zone, enables thickness-adaptive removal, and avoids vaporization, thereby achieving low damage, low energy consumption, and superior quality. Experimentally, we achieve complete metal removal with optimized laser parameters. Multi-method characterizations elucidate the thermochemical damage mechanisms of the epoxy substrate, confirming that damage is confined to the nanoscale. Combining atomic-scale simulation, in situ imaging, and multi-technique ex situ characterization, this work demonstrates the unique advantages of the ultrafast laser processing of layered materials.

Key words: Femtosecond laser ablation, Two-temperature model-molecular dynamic simulation, Layered materials, Laser selective removal