Time domain optical memories using rare earth ions
Creators
- 1. Australian National University, Canberra, ACT (Australia). Research School of Physical Sciences and Engineering, Laser Physics Centre
Description
Full text: Rare earth doped crystals are the chosen materials for the next generation of optical memories where the process of spectral holeburning can be employed to provide an extra dimension of frequency or time to spatial dimensions and with certain rare earth ions increases of the order of 10 7 in storage capacity can be achieved over conventional optical memories. Time domain techniques are preferred over frequency domain techniques and are now well developed. In these techniques arbitrary pulse sequences are stored in the material and read out at some later time with a single read pulse using a stimulated photon echo process. Long pulse sequences will enable more data to be stored but necessitates the use of materials with long dephasing times (corresponding to narrow spectral lines) and it is this characteristic of rare earth systems that makes them the preferred material for the new time domain optical memories. The storage time can range from hours to days but in a practical device will require refreshing or re-enforcing and this puts special requirements on the stability of the laser used for storing the information. The storage process itself can also be weak and more reliable storage can be achieved by recording the data several times with the same pulse sequence. For this to be successful the laser must be at held at a constant frequency and be stable in phase over the entire duration of the pulse sequence. The procedure of reinforcing the data sequence has been proposed before and attempted without attention to the laser frequency stability. However, if the laser is not stable although some data bits will be reinforced or increased in size others will be decreased or even erased. Indeed the reliability of the memory is degraded by the introducing the rewrite process. For our work we have developed a laser with the excellent stability and able to demonstrate reproducible reinforcement of the data sequence. Thus with the rewrite sequence we are able to improve the characteristics of the memory and show how the memory can be retained over long periods. In addition optical phase sensitive detection techniques are employed to continuously monitor the laser stability and thereby confirm the reliability of the optical memory
Additional details
Publishing Information
- Imprint Title
- Rare earths'98. The international rare earths conference, including radio lanthanides in nuclear medicine therapy. New technologies for the 21st century. Programme and abstracts
- Imprint Pagination
- 125 p.
- Journal Page Range
- p. 34
Conference
- Title
- Rare earths'98. New technologies for the 21st Century
- Dates
- 25-30 Oct 1998
- Place
- Fremantle, WA (Australia)
INIS
- Country of Publication
- Australia
- Country of Input or Organization
- Australia
- INIS RN
- 32044141
- Subject category
- S75: CONDENSED MATTER PHYSICS, SUPERCONDUCTIVITY AND SUPERFLUIDITY;
- Resource subtype / Literary indicator
- Conference, Non-conventional Literature
- Descriptors DEI
- DOMAIN STRUCTURE; DOPED MATERIALS; LASERS; MEMORY DEVICES; OPTIMIZATION; RARE EARTHS; STABILITY
- Descriptors DEC
- ELEMENTS; MATERIALS; METALS
Optional Information
- Notes
- This record replaces 31022441 Imprint:The full text of the papers presented at the conference could be found in Materials Science Forum (1999), Vols. 315-317