Improved methods for design of PLD and combinatorial PLD films

被引:7
作者
Lysne, Hogne [1 ]
Brakstad, Thomas [1 ]
Kildemo, Morten [1 ]
Reenaas, Turid [1 ]
机构
[1] Norwegian Univ Sci & Technol NTNU, Dept Phys, N-7491 Trondheim, Norway
关键词
PULSED-LASER DEPOSITION; OPTIMIZATION; SILICON;
D O I
10.1063/5.0105298
中图分类号
O59 [应用物理学];
学科分类号
摘要
Pulsed laser deposition (PLD) is a powerful technique for prototyping thin film materials, both single component (single composition) films and films with a varying composition (e.g., lateral continuous compositional spread, CCS). In this work, we improve one of the simulation methods used to design the deposition of PLD films: We extend the mathematical model for the material spread on the substrate, T-1 ( x , y ), for each laser pulse hitting the target, and we use a more accurate method to determine T-1 ( x , y ) experimentally. The deposition of the material on the substrate is simulated by repetitively adding T-1 ( x , y ), from one or more targets, at the selected location on the substrate. Using the new model, a high agreement between the simulated and grown films' thickness and composition across the substrate was obtained. The basis for the high agreement is the use of variable angle spectroscopic ellipsometry to carefully determine T-1 ( x , y ) by measuring at 794 locations on the 50.8 mm (2 in.) diameter substrates. Factors, such as variation in optical properties and porosity across the plume/calibration films, were considered in the determination of the thicknesses. As test cases, we simulated and deposited (single component) TiO2 thin films and (CCS) TiO2 films doped with Cr and N, deposited on 50.8 mm diameter Si wafers. The modeling and simulations are implemented in an open-source Python library, pyPLD.
引用
收藏
页数:16
相关论文
共 41 条
[31]   NUMERICAL TECHNIQUES FOR ANALYSIS OF LOSSY FILMS [J].
OLDHAM, WG .
SURFACE SCIENCE, 1969, 16 :97-&
[32]  
Pelliccione M, 2008, SPRINGER SER MATER S, V108, P1
[33]   On the relevance of large scale pulsed-laser deposition: Evidence of structural heterogeneities in ZnO thin films [J].
Perriere, J. ;
Hebert, C. ;
Jedrecy, N. ;
Seiler, W. ;
Zanellato, O. ;
Portier, X. ;
Perez-Casero, R. ;
Millon, E. ;
Nistor, M. .
JOURNAL OF APPLIED PHYSICS, 2014, 116 (12)
[34]   Control of Lateral Composition Distribution in Graded Films of Soluble Solid Systems A1-xBxby Partitioned Dual-Beam Pulsed Laser Deposition [J].
Sakai, Joe ;
Caicedo Roque, Jose Manuel ;
Vales-Castro, Pablo ;
Padilla-Pantoja, Jessica ;
Sauthier, Guillaume ;
Catalan, Gustau ;
Santiso, Jose .
COATINGS, 2020, 10 (06)
[35]   Design and spectroscopic reflectometry characterization of pulsed laser deposition combinatorial libraries [J].
Schenck, Peter K. ;
Bassim, Nabil D. ;
Otani, Makoto ;
Oguchi, Hiroyuki ;
Green, Martin L. .
APPLIED SURFACE SCIENCE, 2007, 254 (03) :781-784
[36]   Material optimization via combinatorial deposition and analysis for thermoelectric thin films [J].
Snyder, Ryan D. ;
Thomas, Evan L. ;
Voevodin, Andrey A. .
THIN SOLID FILMS, 2015, 596 :233-241
[37]  
Socol G, 2011, DIG J NANOMATER BIOS, V6, P107
[38]   Towards Scalable Large-Area Pulsed Laser Deposition [J].
Vakulov, Zakhar ;
Khakhulin, Daniil ;
Zamburg, Evgeny ;
Mikhaylichenko, Alexander ;
Smirnov, Vladimir A. ;
Tominov, Roman ;
Klimin, Viktor S. ;
Ageev, Oleg A. .
MATERIALS, 2021, 14 (17)
[39]   A Review of the Segmented-Target Approach to Combinatorial Material Synthesis by Pulsed-Laser Deposition [J].
von Wenckstern, Holger ;
Kneiss, Max ;
Hassa, Anna ;
Storm, Philipp ;
Splith, Daniel ;
Grundmann, Marius .
PHYSICA STATUS SOLIDI B-BASIC SOLID STATE PHYSICS, 2020, 257 (07)
[40]   Numerical modeling of the plasma plume propagation and oxidation during pulsed laser deposition of complex oxide thin films [J].
Wijnands, T. ;
Houwman, E. P. ;
Koster, G. ;
Rijnders, G. ;
Huijben, M. .
PHYSICAL REVIEW MATERIALS, 2020, 4 (10)