Atomic layer deposition (ALD) has recently gained world-wide attention because of its suitability for the fabrication of conformal material layers with thickness in the nanometer range. Although the principles of ALD were realized about 40 years ago, the description of many physicochemical processes that occur during ALD growth is still under development. A constant amount of material deposited in an ALD reaction cycle, that is, growth-per-cycle (GPC), has been a paradigm in ALD through decades. The GPC may vary, however, especially in the beginning of the ALD growth. In this work, a division of ALD processes to four classes is proposed, on the basis of how the GPC varies with the number of ALD reaction cycles: linear growth, substrate-enhanced growth, and substrate-inhibited growth of type 1 and type 2. Island growth is identified as a likely origin for type 2 substrate-inhibited growth, where the GPC increases and goes through a maximum before it settles to a constant value characteristic of a steady growth. A simple phenomenological model is developed to describe island growth in ALD. The model assumes that the substrate is unreactive with the ALD reactants, except for reactive defects. ALD growth is assumed to proceed symmetrically from the defects, resulting islands of a conical shape. Random deposition is the growth mode on the islands. The model allows the simulation of GPC curves, surface fraction curves, and surface roughness, with physically significant parameters. When the model is applied to the zirconium tetrachloride/water and the trimethylaluminum/water ALD processes on hydrogen-terminated silicon, the calculated GPC curves and surface fractions agree with the experiments. The island growth model can be used to assess the occurrence of island growth, the size of islands formed, and point of formation of a continuous ALD-grown film. The benefits and limitations of the model and the general characteristics of type 2 substrate-inhibited ALD are discussed.
Skip Nav Destination
Article navigation
15 December 2004
Research Article|
December 02 2004
Island growth as a growth mode in atomic layer deposition: A phenomenological model
Riikka L. Puurunen;
Riikka L. Puurunen
a)
Interuniversity Microelectronics Center (IMEC vzw)
, Kapeldreef 75, B-3001 Leuven, Belgium and Integrated Systems (INSYS)
, University of Leuven (K.U.Leuven), Kasteelpark Arenberg, B-3001 Leuven, Belgium
Search for other works by this author on:
Wilfried Vandervorst
Wilfried Vandervorst
Interuniversity Microelectronics Center (IMEC vzw)
, Kapeldreef 75, B-3001 Leuven, Belgium and Integrated Systems (INSYS)
, University of Leuven (K.U.Leuven), Kasteelpark Arenberg, B-3001 Leuven, Belgium
Search for other works by this author on:
a)
Present address: VTT Technical Research Centre of Finland, VTT Information Technology, P.O. Box 1208, Fl-02044 VTT, Finland; electronic mail: riikka.puurunen@iki.fi
J. Appl. Phys. 96, 7686–7695 (2004)
Article history
Received:
April 12 2004
Accepted:
September 08 2004
Citation
Riikka L. Puurunen, Wilfried Vandervorst; Island growth as a growth mode in atomic layer deposition: A phenomenological model. J. Appl. Phys. 15 December 2004; 96 (12): 7686–7695. https://doi.org/10.1063/1.1810193
Download citation file:
Sign in
Don't already have an account? Register
Sign In
You could not be signed in. Please check your credentials and make sure you have an active account and try again.
Could not validate captcha. Please try again.
Sign in via your Institution
Sign in via your InstitutionPay-Per-View Access
$40.00
Citing articles via
Related Content
Surface chemistry of atomic layer deposition: A case study for the trimethylaluminum/water process
J. Appl. Phys. (June 2005)
Comparison of mechanical properties of flyash-GGBS based GPC and flyash-alccofine based GPC with different concentrations of alkaline activators
AIP Conference Proceedings (July 2021)
Permeability control of GPC drug delivery by ion implantation
AIP Conference Proceedings (February 1997)
Durability tests of alccofine and flyash based GPC
AIP Conference Proceedings (July 2021)
A spectral MUSCL scheme for gPC-Galerkin method to uncertain hyperbolic equations
AIP Advances (February 2023)