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Non-volatile holographic storage in doubly doped lithium niobate crystals

机译:双掺杂铌酸锂晶体中的非易失性全息存储

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摘要

Photorefractive materials are being widely investigated for applications in holographic data storage. Inhomogeneous illumination of these materials with an optical interference pattern redistributes charge, builds up internal electric fields and so changes the refractive index. Subsequent homogeneous illumination results in light diffraction and reconstructs the information encoded in the original interference pattern. A range of inorganic and organic photorefractive materials are known, in which thousands of holograms of high fidelity can be efficiently stored, reconstructed and erased. But there remains a problem with volatility: the read-out process usually erases the stored information and amplifies the scattered light. Several techniques for 'fixing' holograms have been developed, but they have practical disadvantages and only laboratory demonstrators have been built. Here we describe a resolution to the problem of volatility that should lead to the realization of a more practical system. We use crystals of lithium niobate—available both in large size and with excellent homogeneity—that have been doped with two different deep electron traps (iron and manganese). Illumination of the crystals with incoherent ultraviolet light during the record- ing process permits the storage of data (a red-light interference pattern) that can be subsequently read, in the absence of ultraviolet light, without erasure. Our crystals show up to 32 per cent diffraction efficiency, rapid optical erasure of the stored data is possible using ultraviolet light, and light scattering is effectively prevented.
机译:光折变材料正在全息数据存储中得到广泛研究。这些材料以光学干涉图样进行不均匀照射会重新分布电荷,建立内部电场,从而改变折射率。随后的均匀照明导致光衍射,并重建以原始干涉图样编码的信息。已知多种无机和有机光折变材料,其中可以有效地存储,重建和擦除数千个高保真度的全息图。但是,仍然存在挥发性问题:读出过程通常会擦除存储的信息并放大散射的光。已经开发了几种“固定”全息图的技术,但是它们具有实际的缺点,并且仅建立了实验室演示器。在这里,我们描述了对波动性问题的解决方案,该解决方案应导致实现更实用的系统。我们使用铌酸锂晶体(既有大尺寸晶体又具有出色的均质性),并掺有两种不同的深电子陷阱(铁和锰)。在记录过程中用非相干紫外光照射晶体可以存储数据(红光干涉图样),随后可以在没有紫外光的情况下读取数据,而不会擦除。我们的晶体显示出高达32%的衍射效率,使用紫外线可以快速光学擦除存储的数据,并有效防止了光散射。

著录项

  • 来源
    《Nature》 |1998年第6686期|p.665-668|共4页
  • 作者

    K. Buse; A. Adibi; D. Psaltis;

  • 作者单位
  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 自然科学总论;
  • 关键词

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