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Formation of InAs nanoclusters in silicon by high-dose ion implantation: Experimental data and simulation results

А. Ф. КомаровSevchenko Research Institute of Applied Physical Problems, ul. Kurchatova 7, Minsk, 220045, BelarusФ. Ф. КомаровSevchenko Research Institute of Applied Physical Problems, ul. Kurchatova 7, Minsk, 220045, BelarusO. V. MilchaninSevchenko Research Institute of Applied Physical Problems, Minsk, BelarusЛ. А. ВласуковаBelarussian State University, pr. Nezavisimosti 4, Minsk, 220030, BelarusИ. Н. ПархоменкоBelarussian State University, pr. Nezavisimosti 4, Minsk, 220030, BelarusV. V. MikhailovSevchenko Research Institute of Applied Physical Problems, ul. Kurchatova 7, Minsk, 220045, BelarusМ. А. МоховиковSevchenko Research Institute of Applied Physical Problems, ul. Kurchatova 7, Minsk, 220045, BelarusS. A. MiskevichSevchenko Research Institute of Applied Physical Problems, ul. Kurchatova 7, Minsk, 220045, Belarus
2015en
ABI

Аннотация

A physicomathematical model and dedicated software are developed for simulating high-dose implantation of two types of atoms to form InAs nanoclusters in a silicon matrix. The model is based on solving a set of convection–diffusion–reaction equations. The synthesis of InAs nanoclusters produced by highdose implantation of As+ and In+ ions into crystalline silicon is numerically simulated. Using the methods of transmission electron microscopy and Raman scattering, it is found that InAs nanoclusters are crystalline and have a mean diameter of 7 nm. After As implantation (170 keV, 3.2 × 1016 cm−2) and In implantation (250 keV, 2.8 × 1016 cm−2) into silicon at 500°C, the nanoclusters are distributed with a density of 2.87 × 1011 cm−2. From experimental data and theoretical results, the coefficients of radiation-stimulated diffusion of In and As in silicon, as well as the fraction of the implant in the bound state (i.e., entering into InAs nanoclusters), are determined. Experimental data are compared with simulation results.

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