We have studied the growth of room-temperature sputtered Pd films on 6H-SiC by using the atomic force microscopy technique. In particular, we analyzed the Pd film surface morphology as a function of the film thickness from 3 to 72 nm observing that the Pd grows initially (thickness 212 nm) as three-dimensional (3D) islands. Then (thickness 1236 nm) the Pd film morphology evolves from compact 3D islands to partially coalesced wormlike structures, followed (3660 nm) by a percolation morphology and finally to a continuous and rough film (at 72 nm). The application of the interrupted coalescence model allowed us to evaluate the critical mean islands diameter Rc = 6.6 nm for the partial coalescence process while the application of the kinetic freezing model allowed us to evaluate the room-temperature Pd surface diffusion coefficient Ds = 1.4x10-17 m2/s on 6H-SiC. Finally, the application of the Vincents model allowed us to evaluate the critical Pd coverage Pc=68% for the percolation transition.
Island-to-Percolation Transition During the Room-Temperature Growth of Sputtered Nanoscale Pd Films on Hexagonal SiC
Ruffino F;Grimaldi MG
2010
Abstract
We have studied the growth of room-temperature sputtered Pd films on 6H-SiC by using the atomic force microscopy technique. In particular, we analyzed the Pd film surface morphology as a function of the film thickness from 3 to 72 nm observing that the Pd grows initially (thickness 212 nm) as three-dimensional (3D) islands. Then (thickness 1236 nm) the Pd film morphology evolves from compact 3D islands to partially coalesced wormlike structures, followed (3660 nm) by a percolation morphology and finally to a continuous and rough film (at 72 nm). The application of the interrupted coalescence model allowed us to evaluate the critical mean islands diameter Rc = 6.6 nm for the partial coalescence process while the application of the kinetic freezing model allowed us to evaluate the room-temperature Pd surface diffusion coefficient Ds = 1.4x10-17 m2/s on 6H-SiC. Finally, the application of the Vincents model allowed us to evaluate the critical Pd coverage Pc=68% for the percolation transition.I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.