4.7 Article

High speed ultrafast laser anisotropic nanostructuring by energy deposition control via near-field enhancement

期刊

OPTICA
卷 8, 期 11, 页码 1365-1371

出版社

Optica Publishing Group
DOI: 10.1364/OPTICA.433765

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资金

  1. European Research Council (ENIGMA) [789116]
  2. Microsoft (Project Silica)
  3. European Research Council (ERC) [789116] Funding Source: European Research Council (ERC)

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Storing exponentially increasing data in the information age is a challenge. Multiplexed optical data storage offers high data density, low energy consumption, and long lifetime. Recent advancements in 5D optical data storage based on anisotropic nanostructures show potential for real-world applications, but high speed and density remain challenges. The proposed method for rapid and energy-efficient writing of anisotropic nanostructures in silica glass using energy modulated megahertz-rate fs pulses could lead to high-density data storage and fast information recording.
It is challenging to store the exponentially increasing amount of data in the information age. The multiplexed optical data storage with merits of high data density (hundreds of terabytes/disk), low energy consumption, and long lifetime could open a new era in data storage technology. The recent progress in five-dimensional (5D) optical data storage based on anisotropic nanostructures written by femtosecond (fs) laser pulses in transparent materials reveals its potential for real-world applications, but high writing speed and density remain a major challenge. Here, we propose a method for rapid and energy-efficient writing of highly localized anisotropic nanostructures in silica glass by energy modulated megahertz-rate fs pulses. An isotropic nanovoid is initially generated with pulse energy above the microexplosion threshold and then elongated to an anisotropic nanolamella-like structure via the near-field enhancement effect by lower energy pulses, minimizing the unwanted thermal effects from megahertz-rate fs pulses. The anisotropic nanostructures are exploited for 5D data storage with a rate of 10(6) voxels/s, corresponding to a demonstrated fast information recording of similar to 225 kB/s and a potentially high-density data storage of similar to 500 TB/disk. (C) 2021 Optical Society of America under the terms of the OSA Open Access Publishing Agreement

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