Published January 1, 2012 | Version v1
Journal article

Calibrated nanoscale dopant profiling using a scanning microwave microscope

  • 1. University of Linz, Christian Doppler Laboratory for Nanoscopic Methods in Biophysics, Altenbergerstrasse 69, 4040 Linz (Austria)
  • 2. Technical University of Vienna, Institute for Solid State Electronics, 1040 Vienna (Austria)
  • 3. Agilent Technologies, Inc., 5301 Stevens Creek Blvd., Santa Clara, California 95051 (United States)
  • 4. National Institute for Standards and Technology, Electromagnetic Division, 325 Broadway, Boulder, Colorado 80305-3337 (United States)
  • 5. National Institute of Standards and Technology, Semiconductor Measurements Division, Gaithersburg, Maryland 20899-8120 (United States)

Description

The scanning microwave microscope is used for calibrated capacitance spectroscopy and spatially resolved dopant profiling measurements. It consists of an atomic force microscope combined with a vector network analyzer operating between 1-20 GHz. On silicon semiconductor calibration samples with doping concentrations ranging from 1015 to 1020 atoms/cm3, calibrated capacitance-voltage curves as well as derivative dC/dV curves were acquired. The change of the capacitance and the dC/dV signal is directly related to the dopant concentration allowing for quantitative dopant profiling. The method was tested on various samples with known dopant concentration and the resolution of dopant profiling determined to 20% while the absolute accuracy is within an order of magnitude. Using a modeling approach the dopant profiling calibration curves were analyzed with respect to varying tip diameter and oxide thickness allowing for improvements of the calibration accuracy. Bipolar samples were investigated and nano-scale defect structures and p-n junction interfaces imaged showing potential applications for the study of semiconductor device performance and failure analysis.

Additional details

Identifiers

Publishing Information

Journal Title
Journal of Applied Physics
Journal Volume
111
Journal Issue
1
Journal Page Range
p. 014301-014301.9
ISSN
0021-8979
CODEN
JAPIAU

Optional Information

Notes
(c) 2012 American Institute of Physics