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Impact of materials properties on multiplex holographic data storage

机译:材料特性对多重全息数据存储的影响

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Abstract: Holograms may be superimposed in a holographic medium by a number of techniques such as angular, phase-encoded, and wavelength multiplexing. For typical architectures, crosstalk increases as the bandwidth of stored data increases. The number of superimposed holograms in an ideal medium is limited by its length L, the wavelength of light $lambda@, and index of refraction n, such that for crosstalk-limited storage we can superimpose up to 2nL/$lambda holograms of high bandwidth. In practice, however, the properties of real materials depart from the ideal through index inhomogeneities and scattering centers, dispersion in the material response as a function of grating spatial frequency, and dispersion as a function of the wavevector and polarization of both incident and scattered light. We discuss the impact of these properties on holographic data storage and describe material, device, and system strategies designed to minimize these effects.!21
机译:摘要:全息图可以通过多种技术(例如角度,相位编码和波长复用)叠加在全息介质中。对于典型的体系结构,串扰随着存储数据带宽的增加而增加。理想介质中叠加全息图的数量受其长度L,光波长$ lambda @和折射率n的限制,因此对于受串扰限制的存储,我们最多可以叠加2nL / $ lambda高带宽全息图。然而,实际上,实际材料的特性会因折射率不均匀和散射中心而偏离理想状态,材料响应的色散随光栅空间频率而变,色散随波矢以及入射光和散射光的偏振而变。我们讨论了这些特性对全息数据存储的影响,并描述了旨在最小化这些影响的材料,设备和系统策略。21

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