Nan Li, Yu Wang, Yitong Chen, Qingwei Zhang, Hongpeng Xiao, Yingying Li, Zhe Lin, Shanglu Yang
Robust welding of transparent optoelectrical windows and metal frames depends on the precise regulation of the interfacial gap. In this study, we presented a white-light-interferometer (WLI)-based method to measure the interfacial gap of ultrafast-laser-welded samples, thereby establishing a direct correlation between interfacial gap thickness, joint morphology, and mechanical performance. By systematically varying the interfacial gap from intimate contact to non-optical contact, we identify distinct bonding mechanisms: sapphire melting with smooth interface at small gaps, spallation-induced metal eruption and rough interface at medium gaps, crack-rich joint at large gaps. Fracture and cross-sectional analyses of SEM and EDS results confirm that the interfacial eruptions originate from laser-induced spallation, providing new insight into the bonding mechanism. The welded joints achieved shear strengths up to ∼291 MPa, representing 73% of the intrinsic strength of sapphire, and the large-scale components welding was successfully demonstrated. These results lay the foundation for advanced optoelectronic packaging and integration.