Skip to main content
U.S. Department of Energy
Office of Scientific and Technical Information

The Effects of Biaxial Strain and Chemical Ordering on the Band Gap of InGaN

Journal Article · · Applied Physics Letters
OSTI ID:759991

The authors have performed first-principles calculations to examine the effects of biaxial strain and chemical ordering on the band gap of wurtzite In{sub x}Ga{sub 1{minus}x}N in the range 0 {le} x {le} 0.5. The results for unstrained, random alloys are in good agreement with theoretical estimates and measurements on unstrained zinc-blende alloys, but are in poor agreement with recent measurements on strained wurtzite alloys which display significantly lower gaps. Biaxial strain is found to have a non-linear effect on calculated alloy gaps, increasing them for x < 0.25 and decreasing them for x > 0.25. However, the overall agreement with measured wurtzite values remains poor. Chemical ordering along the [0001] direction in strained alloys is found to decrease the band gaps considerably, yielding much improved agreement with measurements. They discuss their results with regard to current theories concerning the optical properties of wurtzite InGaN alloys.

Research Organization:
Sandia National Labs., Albuquerque, NM (US); Sandia National Labs., Livermore, CA (US)
Sponsoring Organization:
US Department of Energy (US)
DOE Contract Number:
AC04-94AL85000
OSTI ID:
759991
Report Number(s):
SAND2000-1905J
Journal Information:
Applied Physics Letters, Journal Name: Applied Physics Letters
Country of Publication:
United States
Language:
English

Similar Records

Effects of biaxial strain and chemical ordering on the band gap of InGaN
Journal Article · Sun Jan 07 23:00:00 EST 2001 · Applied Physics Letters · OSTI ID:40205260

Contactless electroreflectance of InGaN layers with indium content <=36%: The surface band bending, band gap bowing, and Stokes shift issues
Journal Article · Mon Nov 30 23:00:00 EST 2009 · Journal of Applied Physics · OSTI ID:21359375