Published January 2023 | Version v1
Journal article

Shockwave and spallation in silver and other materials by sub-ns laser pulse at 1016 W/cm2 intensity

  • 1. INFN‐Sections of Catania, Catania (Italy)
  • 2. Department of Mathematical and Computer Sciences, Physical Sciences and Earth Sciences, MIFT, University of Messina, Messina (Italy)
  • 3. INFN‐Section of Lecce, Lecce (Italy)
  • 4. Department of Mathematics and Physics "E. De Giorgi", University of Salento, Lecce (Italy)

Description

The laser spallation effect due to intense shockwaves caused by a brief and intense laser pulse irradiating a target surface, 2 mm thick, has been investigated for silver and other materials. For 300 ps IR laser pulse, at intensities of the order of 1016 W/cm2, the shockwave may produce deformations of the back-face in ductile materials, such as Ag, Cu and Al. In heavy materials with high tensile strength, such as Ta, the shockwave produces cracks in the bottom of the laser crater but not deformation in the back-face, while in brittle materials, such as monocrystalline Ge, it produces only superficial cracks and flaking, but not deformation and spallation of the back-face. In thick polymeric materials, such as high-density polyethylene, the ablated crater shape is well defined and the shockwave is strongly damped, and no deformation has been observed in the back-face. The laser ablation yield and the ion acceleration in the backward direction have been measured by mass lost and time-of-flight measurements. SEM microscopy of the different irradiated targets, showing details of the crater size, edges, flaking and deformation in the back-face, useful for a discussion on the shockwave propagation and shock pressure calculation, is presented. (© 2022 The Authors. Contributions to Plasma Physics published by Wiley‐VCH GmbH.)

Availability note (English)

Available from: http://dx.doi.org/10.1002/ctpp.202200092

Additional details

Identifiers

Publishing Information

Journal Title
Contributions to Plasma Physics (Online)
Journal Volume
63
Journal Issue
1
Journal Page Range
p. 1-15
ISSN
1521-3986

Optional Information

Notes
AID: e202200092