Burst Mode Ultrafast Laser Welding of Sapphire and Fe-36Ni Alloy with Non-optical Contact Condition
Yu Wang, Nan Li, Yuxuan Li, Yitong Chen, Qingwei Zhang, Jianing Zhao, Zhe Lin, Zihui Dong, Guochang Jiang, Zhengqiang Zhu, Shanglu Yang

TL;DR
This study demonstrates that burst mode ultrafast laser welding enables high-gap bonding between sapphire and Fe-36Ni alloy, significantly improving interfacial fusion and material mixing compared to single pulse methods.
Contribution
It introduces a burst mode laser welding technique that enhances bonding across larger gaps and promotes interdiffusion, advancing high-precision transparent-metal material integration.
Findings
Burst mode sustains bonding over gaps >10 um.
Fusion zone size increases by 82% with burst mode.
Enhanced interdiffusion and melting at the interface.
Abstract
Ultrafast laser welding provides a promising approach for high precision integration of transparent and metallic materials. However, its practical application remains constrained by the precise regulation of the interfacial gap. This study investigates the interfacial response and bonding mechanism of sapphire and Fe-36Ni alloy joints under controlled non-optical contact conditions using burst mode ultrafast laser irradiation. A polymer interlayer was introduced between naturally stacked samples to establish a variable interfacial gap, allowing systematic evaluation of gap-dependent morphology, melting behavior, and elemental transport. By redistributing the pulse energy into sequential sub-pulses, the burst mode reconstructs the temporal energy-deposition process, yielding enhanced plasma-material coupling and stable thermal accumulation. Compared with single pulse irradiation, burst…
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Taxonomy
TopicsLaser Material Processing Techniques · Welding Techniques and Residual Stresses · Additive Manufacturing Materials and Processes
