Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
9829394 | Journal of Crystal Growth | 2005 | 7 Pages |
Abstract
We have fabricated hydrogenated nanocrystalline silicon (nc-Si:H) artificial quantum dot (AQD) arrays on Si substrates by a low-cost and industrialized plasma-enhanced chemical vapor deposition technique using self-organized porous alumina membrane masks. This effective approach, by the aid of small Si (3-6Â nm) natural quantum dots (NQDs) in nc-Si:H, has revolutionized the fact that many reported semiconductor nanodot arrays in the literature are not real systems with quantum size effects due to the large AQDs of over 25Â nm. The nc-Si:H nanodot arrays have uniform shape with standard deviation of size distribution less than 5%, and sheet densities of over 1Ã1010Â cmâ2 and 3Ã1011Â cmâ2 for the AQDs and NQDs, respectively. This proposal opens the possibility of creating semiconductor nanodevice arrays in a manner of true quantum confinement phenomena through the Si NQDs, with the uniform nc-Si:H AQDs the base of arrays and their spacing of good electrical insulation.
Related Topics
Physical Sciences and Engineering
Physics and Astronomy
Condensed Matter Physics
Authors
G.Q. Ding, W.Z. Shen, M.J. Zheng, W.L. Xu, Y.L. He, Q.X. Guo,