Tilting behaviors of metal microjet in laser-induced forward transfer

Di Wu, Yongxiang Hu, Guohu Luo, Yu Zhou
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Abstract

Laser-induced forward transfer (LIFT) is proposed as a highly efficient and high-resolution printing technique. Tilting of the microjet in the LIFT process affects the deposition deviation, lowing the printing resolution. We investigate the tilting behaviors of the metal microjet in the nanosecond LIFT process based on high-speed observation. Experiments were conducted on the copper film under different laser fluences. Observations based on the pump-probe method were performed to capture the ejection behavior of microjets. We find that the tilting direction is isotropic and the tilting angle follows Gaussian distribution. The tilting behavior originates from the disturbance of residual stress within the film during jet generation because the statistical results of the tilting angle hardly vary with the propagation time. In addition, the tilting angle is found to decrease linearly with the laser fluence due to the ejection velocity increasing at a higher rate than the lateral velocity. The lateral offset of the tilting microjet at different flight distances matches well with the position deviations, verifying the tilting behavior of the microjet. This study provides essential comprehension of the tilting behavior of metal microjet in the LIFT process.
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激光诱导正向传输中金属微射流的倾斜行为
激光诱导正向转移(LIFT)是一种高效、高分辨率的印刷技术。在 LIFT 过程中,微射流的倾斜会影响沉积偏差,从而降低打印分辨率。我们基于高速观测研究了纳秒级 LIFT 过程中金属微射流的倾斜行为。实验在不同激光通量下的铜膜上进行。基于泵浦探针方法的观测捕捉了微射流的喷射行为。我们发现倾斜方向是各向同性的,倾斜角度遵循高斯分布。由于倾斜角的统计结果几乎不随传播时间而变化,因此倾斜行为源于射流产生过程中薄膜内残余应力的干扰。此外,由于喷射速度的增长率高于横向速度,倾斜角随激光能量的增加而线性减小。倾斜微射流在不同飞行距离下的横向偏移与位置偏差非常吻合,验证了微射流的倾斜行为。这项研究为理解 LIFT 过程中金属微射流的倾斜行为提供了重要依据。
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