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Three-dimensional supercritical resolved light-induced magnetic holography

机译:三维超临界分辨光诱导磁全息

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In the era of big data, there exists a growing gap between data generated and storage capacity using two-dimensional (2D) magnetic storage technologies (for example, hard disk drives), because they have reached their performance saturation. 3D volumetric all-optical magnetic holography is emerging rapidly as a promising road map to realizing high-density capacity for its fast magnetization control and subwavelength magnetization volume. However, most of the reported light-induced magnetization confronts the problems of impurely longitudinal magnetization, diffraction-limited spot, and uncontrollable magnetization reversal. To overcome these challenges, we propose a novel 3D light-induced magnetic holography based on the conceptual supercritical design with multibeam combination in the 4π microscopic system. We theoretically demonstrate a 3D deep super-resolved purely longitudinal magnetization spot by focusing six coherent circularly polarized beams with two opposing high numerical aperture objectives, which allows 3D magnetic holography with a volumetric storage density of up to 1872 terabit per cubic inches. The number and locations of the super-resolved magnetization spots are controllable, and thus, desired magnetization arrays in 3D volume can be produced with properly designed phase filters. Moreover, flexible magnetization reversals are also demonstrated in multifocal arrays by using different illuminations with opposite light helicity. In addition to data storage, this magnetic holography may find applications in information security, such as identity verification for a credit card with magnetic stripe.
机译:在大数据时代,使用二维(2D)磁存储技术(例如,硬盘驱动器)生成的数据和存储容量之间的差距越来越大,因为它们已经达到了性能饱和。 3D体积全光磁全息术作为其实现快速磁化控制和亚波长磁化量的高密度容量的有前途的路线图,正在迅速兴起。然而,大多数报道的光诱导的磁化面临不正确的纵向磁化,衍射极限斑点和不可控的磁化反转的问题。为了克服这些挑战,我们提出了一种新颖的3D光诱导磁全息照相技术,该技术基于4π显微镜系统中具有多光束组合的概念超临界设计。我们在理论上通过聚焦六个相干的圆偏振光束和两个相对的高数值孔径物镜,展示了3D深超分辨的纯纵向磁化斑,这使3D磁全息照相法的体积存储密度高达1872 TB /立方英寸。超分辨磁化点的数量和位置是可控制的,因此,可以使用适当设计的相位滤波器来生成3D体积的所需磁化阵列。此外,通过使用具有相反光螺旋度的不同照明,在多焦点阵列中也展示了灵活的磁化反转。除了数据存储之外,这种磁全息术还可以在信息安全中找到应用,例如具有磁条的信用卡的身份验证。

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