Spectral Encoding Using Nanorods for High-Density Optical Data Storage

Author(s):  
James W. Chon ◽  
Craig Bullen ◽  
Min Gu
Author(s):  
M. S. Shahriar ◽  
L. Wong ◽  
M. Bock ◽  
B. Ham ◽  
P. R. Hemmer

1988 ◽  
Vol 82 (1) ◽  
pp. 99-104 ◽  
Author(s):  
S. Mancha ◽  
J. Bullington ◽  
R. Carter ◽  
C. Dehainaut

2012 ◽  
Vol 532-533 ◽  
pp. 8-11
Author(s):  
Jian Wen Cai

Two-photon three-dimensional optical data storage is an important method to realize high density storage and ultra-high density storage. This paper introduces the the basic principle of two-photon photobleaching optical storage, describes two-photon three-dimensional optical storage system and the absorption and fluorescence spectra of a new type of photobleaching materials BASF in detail, carries out the experimental study that two-photon information is written and read out against a new photobleaching material of BASF using femtosecond pulse laser wavelength is 800nm, and realize two layers of optical information storage, the information point spacing is 8μm and the interlayer distance is 15μm; two-layer information point signal strength is recognized using Recognition algorithm. The experiment proved that new photobleaching material of BASF can be used for two-photon three-dimensional optical storage, that has laid a solid foundation for the high-density and ultra-high density optical information storage materials research.


2002 ◽  
Vol 728 ◽  
Author(s):  
Junji Tominaga ◽  
Dorothea Büchel ◽  
Christophe Mihalcea ◽  
Takayuki Shima ◽  
Toshio Fukaya

AbstractRF-magnetron sputtered thin films of silver oxide (AgOx) were recently applied to ultra-high density optical data storage. It has been elucidated that the AgOx film sandwiched by protection layers shows very attractive characteristics in strong light-scattering, local plasmon generation and super-resolution by focussing a laser beam on it. Especially, the combination with an active recording film (optical phase change or magneto-optical) used in the currently recordable optical disks improves the storage density and overcomes the diffraction limit. In this paper, we describe the basic characteristics of nano-scale light scattering centers generated in the AgOx films and the interaction with ultra-high density recorded mark patterns in a near-field region. In addition, we provide the structural transition of the AgOx film by thermal and laser annealing treatment.


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