Makowski M, Bomba J, Frej A, Kolodziejczyk M, Sypek M, Shimobaba T, Ito T, Kirilyuk A, Stupakiewicz A
Faculty of Physics, Warsaw University of Technology, 75 Koszykowa, 00-662, Warsaw, Poland.
Faculty of Physics, University of Bialystok, 1L Ciolkowskiego, 15-245, Bialystok, Poland.
Nat Commun. 2022 Nov 26;13(1):7286. doi: 10.1038/s41467-022-35023-9.
Despite recent significant progress in real-time, large-area computer-generated holography, its memory requirements and computational loads will be hard to tackle for several decades to come with the current paradigm based on a priori calculations and bit-plane writing to a spatial light modulator. Here we experimentally demonstrate a holistic approach to serial computation and repeatable writing of computer-generated dynamic holograms without Fourier transform, using minimal amounts of computer memory. We use the ultrafast opto-magnetic recording of holographic patterns in a ferrimagnetic film with femtosecond laser pulses, driven by the on-the-fly hardware computation of a single holographic point. The intensity-threshold nature of the magnetic medium allows sub-diffraction-limited, point-by-point toggling of arbitrarily localized magnetic spots on the sample, according to the proposed circular detour-phase encoding, providing complex modulation and symmetrical suppression of upper diffractive orders and conjugated terms in holographically reconstructed 3-D images.
尽管近期实时、大面积计算机生成全息技术取得了显著进展,但基于先验计算和向空间光调制器进行位平面写入的当前范式,在未来几十年内仍难以解决其内存需求和计算负载问题。在此,我们通过实验展示了一种整体方法,可在使用最少计算机内存的情况下,对计算机生成的动态全息图进行串行计算和可重复写入,且无需进行傅里叶变换。我们利用飞秒激光脉冲在亚铁磁薄膜中对全息图案进行超快光磁记录,由单个全息点的实时硬件计算驱动。磁性介质的强度阈值特性允许根据所提出的圆形迂回相位编码,对样品上任意局部化的磁点进行亚衍射极限的逐点切换,从而在全息重建的三维图像中提供复杂调制以及对上衍射级和共轭项的对称抑制。