Related Experiment Video
Updated: Jan 20, 2026

Fabrication of Robust Nanoscale Contact between a Silver Nanowire Electrode and CdS Buffer Layer in CuIn,GaSe2 Thin-film Solar Cells
Published on: July 19, 2019
High-Quality 100 nm Thick InSb Films Grown on GaAs(001) Substrates with an In Al1- Sb Continuously Graded Buffer
Soo Seok Kang1,2, Suk In Park1, Sang Hoon Shin1
1Center for Opto-Electronic Material and Devices and Advanced Analysis Center, Korea Institute of Science and Technology, Seoul 136-791, Republic of Korea.
Abstract:
In this paper, we report the growth of a high-quality 100 nm thick InSb layer on a (001) GaAs substrate for InSb-based high-speed electronic device applications. A continuously graded buffer (CGB) technique with In Al1- Sb was used to grow high-quality InSb films on GaAs substrates. The CGB layer was grown by continuously changing the growth temperature and composition of the aluminum and indium during the growth of the buffer layer. Degradation of electrical properties, which normally accompany carrier-defect scattering in a heteroepitaxial layer, was minimized by using the CGB layer. The electrical properties of the InSb films were characterized by Hall measurements, and the electron mobility of the 100 nm-thick InSb film had the largest value, of 39 290 cm2/V·s, among reports of similar thickness. To investigate the relationship between electrical and structural properties, the 100 nm thick InSb film was characterized by energy-dispersive spectroscopy and transmission electron microscopy.
Related Concept Videos
09:01Fabrication of Robust Nanoscale Contact between a Silver Nanowire Electrode and CdS Buffer Layer in Cu(In,Ga)Se2 Thin-film Solar Cells
07:32Reactive Vapor Deposition of Conjugated Polymer Films on Arbitrary Substrates
05:02Procedure for the Transfer of Polymer Films Onto Porous Substrates with Minimized Defects
06:49Radio Frequency Magnetron Sputtering of GdBa2Cu3O7−δ/ La0.67Sr0.33MnO3 Quasi-bilayer Films on SrTiO3 (STO) Single-crystal Substrates
08:09A Technique to Functionalize and Self-assemble Macroscopic Nanoparticle-ligand Monolayer Films onto Template-free Substrates
12:32The Effect of Anodization Parameters on the Aluminum Oxide Dielectric Layer of Thin-Film Transistors

