Logo image
Properties of radio-frequency magnetron sputtered ITO films without in-situ substrate heating and post-deposition annealing
期刊文章

Properties of radio-frequency magnetron sputtered ITO films without in-situ substrate heating and post-deposition annealing

W.-F. Wu 和 B.-S. Chiou
Thin Solid Films, 卷.247(2), 頁碼.201-207
1994
Web of Science ID: WOS:A1994NX69100011

摘要

Electric properties Film preparation Indium compounds Optical properties Oxides Sputter deposition Substrates Tin compounds Deposition rate Indium tin oxide Radiofrequency magnetron sputtering Conductive films
Indium tin oxide (ITO) films have been prepared by radio-frequency (r.f.) magnetron sputtering an oxide target (90 wt.% In2O3-10 wt.% SnO2) onto glass substrates without in-situ substrate heating. The effect of sputtering conditions on the deposition rate and the optical and electrical properties of ITO films are investigated. The as-deposited films have an electrical resistivity of ∼4 × 10-4Ω cm, visible transmittance of about 85%, and infrared reflectance of above 80% at 5 μm. A virtual source of the sputtered particles is formed in the gap between the target and substrate and its position is related to the energy of the sputtered particles. The position of the virtual source is used to explain the correlation between the deposition rate and target-to-substrate distance. The O/In atomic ratio is found to decrease with increasing sputtering power, resulting in an increase in the carrier concentration of the film and a decrease in the Hall mobility. Blackening of ITO films deposited at high sputtering power is observed and discussed. © 1994.

檔案與連結 (1)

url
https://www.scopus.com/inward/record.uri?eid=2-s2.0-0028467303&doi=10.1016%2f0040-6090%2894%2990800-1&partnerID=40&md5=8a7a3d5d8cec897a82c1287e7921d5e7檢視

相關連結

InCites亮點

本研究成果之相關指標(擷取自 InCites Benchmarking & Analytics)

引用書目主題
2 Chemistry
2.74 Photocatalysts
2.74.16 ZnO Nanostructures
Web Of Science研究領域
Materials Science, Coatings & Films
Materials Science, Multidisciplinary
Physics, Applied
Physics, Condensed Matter
ESI研究領域
Materials Science

詳細資料

Logo image