DocumentCode :
1362414
Title :
Application of simulation on the design of phase-change optical recording disks
Author :
Chou, Lih-Hsin ; Jen, Chun-Ping ; Ching-Chang Chieng
Author_Institution :
Nat. Tsing Hua Univ., Hsinchu, Taiwan
Volume :
34
Issue :
2
fYear :
1998
fDate :
3/1/1998 12:00:00 AM
Firstpage :
414
Lastpage :
416
Abstract :
Optical absorption and thermal conduction are the two key factors affecting temperature distribution and, subsequently, the write, erase characteristics of a phase-change optical recording disk. Therefore, by using carefully measured film physical properties of each layer, this work simulates a transient temperature profile while simultaneously considering optical absorption and thermal conduction. Through the simulated transient temperature profile, cooling-rate and reflectivity, dependence of phase-changed spot size on the laser power and laser pulse duration was observed. The proper combination of the disk structure and the associated write, erase conditions are obtained as well. A disk structure can subsequently be designed on the basis of this information. In addition, a novel dielectric layer, i.e. hydrogenated amorphous carbon (α-C:II), is simulated and compared with the disk applying conventionally used ZnS-SiO2 dielectric layers. The disk structures used herein are PC/ZnS-SiO2/GeSbTe/ZnS-SiO2 /Al and PC/α-C:H/GeSbTe/α-C:H/Al. According to those results, α-C:H film is highly promising as a dielectric layer of the phase change optical recording disk for both wavelengths of 780 and 660 nm
Keywords :
heat conduction; light absorption; optical disc storage; optical films; reflectivity; temperature distribution; α-C:H film; 660 nm; 780 nm; C:H; GeSbTe; PC/α-C:H/GeSbTe/α-C:H/Al structure; PC/ZnS-SiO2/GeSbTe/ZnS-SiO2/Al structure; ZnS-SiO2; ZnS-SiO2 dielectric layer; cooling rate; design; laser power; laser pulse duration; optical absorption; phase-change optical recording disk; reflectivity; simulation; spot size; thermal conduction; transient temperature distribution; Absorption; Dielectrics; Laser theory; Optical design; Optical films; Optical recording; Power lasers; Temperature distribution; Thermal conductivity; Thermal factors;
fLanguage :
English
Journal_Title :
Magnetics, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9464
Type :
jour
DOI :
10.1109/20.667779
Filename :
667779
Link To Document :
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