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In-line Crack and Stress
Detection in Silicon Solar Cells Using Resonance Ultrasonic Vibrations--Ultrasonic
Technologies, Inc., 27247 Breakers Drive, Zephyrhills, FL 33543; 813-974-2031
Dr. Sergei
Ostapenko, Principal Investigator, sergei.ostapenko@ultrasonictech.com
Dr. Sergei
Ostapenko, Business Official, sergei.ostapenko@ultrasonictech.com
DOE Grant No. DE-FG02-07ER84790
Amount: $93,750
The
global photovoltaic industry is expanding rapidly (up to 40% growth in recent
years) to meet growing renewable energy demands, due to dramatically increasing
prices of fossil energy sources.
Crystalline silicon (c-Si) is a dominant
segment in the solar cell market, contributing to over 90% of the solar power
module production. One of the current
technological problems in the production of c-Si
solar cells is the identification and removal mechanical defects (such as
cracks and high residual stress), which lead to loss of wafer/cell integrity
and ultimately to breakage. This problem
is increased further as a result of a cost driven strategy to reduce wafer
thickness down to 100 microns while concurrently increasing wafer size up to
210 mm. This project will develop a
Resonance Ultrasonic Vibrations (RUV) system for the quick and non-destructive
assessment of mechanical defects in full-size c-Si
solar cells. The RUV method will be
based on the variation of resonance peak characteristics (resonance frequency,
bandwidth, and amplitude) that result from physical variations in the wafers
and cells caused by cracks. Simple criteria
will be developed and used for wafer rejection from the solar cell lines. In Phase I:
(1) the sensitivity limits of the RUV method will be established in
terms of crack length, location, and geometry; (2) an algorithm will be
developed to separate the effect of residual stress from that of periphery
cracks on the RUV frequency curve; and (3) stable “24/7” data acquisition and
analyses will be demonstrated with a speed capability that matches the 2
seconds per wafer throughput on state-of-the-art automatic production lines.
Commercial
Applications and other Benefits as described by the awardee: A
real-time, in-line, automatic process control tool for the identification and
rejection of unstable solar cells (due to periphery cracks and high levels of
residual stress) from production lines should be of interest to both solar cell
producers and automatic cell line equipment vendors. Market penetration for RUV is currently
favored by the high demand for this type of in-line testing and the limitations
of competing techniques.