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High-density data storage using proximal probe techniques

机译:使用近端探针技术的高密度数据存储

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We describe some of the achievements and problems associated with proximal probe-based approaches to high-density data storage. While STM-based methods have demonstrated spectacular areal densities dwarfing anything achievable with today's storage technologies, reliability and data rate issues present serious obstacles. These problems have led us to focus on techniques based on AFM and near-field optics. First, we have developed a thermomechanical writing scheme using an AFM tip. We have addressed many of the practical issues involved, including data rate. With custom low-mass cantilevers, we have demonstrated readback on real data with a data rate of 1.2 Mb/s. We have also pursued nontopographic storage techniques based on charge storage in nitride-oxide semiconductor structures and near-field optical storage. These techniques should be able to achieve densities comparable to those reached with the AFM scheme, with the added advantage that they are fast and reversible. Although it is not yet clear whether any of these probe-based approaches can ever be made practical, they do represent potential pathways to the higher densities that will be needed in the decades ahead.
机译:我们描述了与基于近端探针的高密度数据存储方法相关的一些成就和问题。尽管基于STM的方法已经证明了惊人的面密度,这使当今的存储技术无法实现,但是可靠性和数据速率问题却构成了严重的障碍。这些问题使我们专注于基于AFM和近场光学的技术。首先,我们开发了一种使用AFM笔尖的热机械书写方案。我们已经解决了许多实际问题,包括数据速率。使用自定义的低质量悬臂,我们已演示了以1.2 Mb / s的数据速率回读真实数据。我们还追求基于氮氧化物半导体结构中电荷存储和近场光存储的非地形存储技术。这些技术应该能够实现与AFM方案所达到的密度相当的密度,并具有快速且可逆的优势。尽管尚不清楚这些基于探针的方法是否可以实用,但它们确实代表了未来几十年将需要的更高密度的潜在途径。

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