English

Novel 3D Reciprocal Space Visualization of Strain Relaxation in InSb on GaAs Substrates

Materials Science 2024-01-25 v1

Abstract

This study introduces the Reciprocal Space Polar Visualization (RSPV) method, a novel approach for visualizing X-ray diffraction-based reciprocal space data. RSPV allows for the precise separation of tilt and strain, facilitating their individual analysis. InSb was grown by molecular beam epitaxy (MBE) on two (001) GaAs substrates \unicodex2014\unicode{x2014} one with no misorientation (Sample A) \unicodex2014\unicode{x2014} one with 2{\deg} surface misorientation from the (001) planes (Sample B). There is a substantial lattice mismatch with the substrate and this results in the generation of defects within the InSb layer during growth. To demonstrate RSPV's effectiveness, a comprehensive comparison of surface morphology, dislocation density, strain, and tilt was conducted. RSPV revealed previously unobserved features of the (004) InSb Bragg peak, partially explained by the presence of threading dislocations and oriented abrupt steps (OASs). Surface morphologies examined by an atomic force microscope (AFM) revealed that Sample B had significantly lower root mean square (RMS) roughness. Independent estimates of threading dislocation density (TDD) using X-ray diffraction (XRD) and electron channelling contrast imaging (ECCI) confirmed that Sample B exhibited a significantly lower TDD than Sample A. XRD methods further revealed unequal amounts of α\alpha and β\beta type threading dislocations in both samples, contributing to an anisotropic Bragg peak. RSPV is shown to be a robust method for exploring 3D reciprocal space in any crystal, demonstrating that growing InSb on misoriented GaAs produced a higher-quality crystal compared to an on-orientation substrate.

Keywords

Cite

@article{arxiv.2401.13258,
  title  = {Novel 3D Reciprocal Space Visualization of Strain Relaxation in InSb on GaAs Substrates},
  author = {T. Blaikie and Y. Shi and M. C. Tam and B. D. Moreno and Z. R. Wasilewski},
  journal= {arXiv preprint arXiv:2401.13258},
  year   = {2024}
}

Comments

11 pages, 7 figures. This paper will be submitted to Journal of Vacuum Science and Technology A