Skip to main navigation Skip to search Skip to main content

Comparison between Grating Imaging and Transient Grating Techniques on Measuring Carrier Diffusion in Semiconductor

  • Ke Chen
  • , Xianghai Meng
  • , Feng He
  • , Yongjian Zhou
  • , Jihoon Jeong
  • , Nathanial Sheehan
  • , Seth R. Bank
  • , Yaguo Wang*
  • *Corresponding author for this work
  • University of Texas at Austin

Research output: Contribution to journalArticlepeer-review

Abstract

Optical grating technique, where optical gratings are generated via light inference, has been widely used to measure charge carrier and phonon transport in semiconductors. In this paper, compared are three types of transient optical grating techniques: transient grating diffraction, transient grating heterodyne, and grating imaging, by utilizing them to measure carrier diffusion coefficient in a GaAs/AlAs superlattice. Theoretical models are constructed for each technique to extract the carrier diffusion coefficient, and the results from all three techniques are consistent. Our main findings are: (1) the transient transmission change ∆T/T0 obtained from transient grating heterodyne and grating imaging techniques are identical, even these two techniques originate from different detection principles; and (2) by adopting detection of transmission change (heterodyne amplification) instead of pure diffraction, the grating imaging technique (transient grating heterodyne) has overwhelming advantage in signal intensity than the transient grating diffraction, with a signal intensity ratio of 315:1 (157:1).

Original languageEnglish
Pages (from-to)348-359
Number of pages12
JournalNanoscale and Microscale Thermophysical Engineering
Volume22
Issue number4
DOIs
StatePublished - 2 Oct 2018
Externally publishedYes

Keywords

  • Transient grating heterodyne
  • carrier diffusion
  • diffraction
  • grating imaging

Fingerprint

Dive into the research topics of 'Comparison between Grating Imaging and Transient Grating Techniques on Measuring Carrier Diffusion in Semiconductor'. Together they form a unique fingerprint.

Cite this