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Plasmon-Assisted Self-Encrypted All-Optical Memory
Authors:Chengyun Zhang  Min Ji  Xilin Zhou  Xiaohu Mi  Huan Chen  Baobao Zhang  Zhengkun Fu  Zhenglong Zhang  Hairong Zheng
Affiliation:1. School of Physics and Information Technology, Shaanxi Normal University, Xi'an, 710062 China

School of Electronic Engineering, Xi'an University of Posts & Telecommunications, Xi'an, 710121 China;2. School of Physics and Information Technology, Shaanxi Normal University, Xi'an, 710062 China

Abstract:All-optical responsive nanomaterials, which can rapidly switch between two stable states, have been regarded as the next-generation memories due to their potential to realize binary information storage and implement on-chip, integrated photonic neuromorphic systems. Rare earth oxides are preeminent candidates owing to their extraordinary luminescent stability and narrow optical transitions. However, due to the lack of simple and effective optical switches, it is difficult to realize all-optical data storage, encoding, and retrieval by pure rare earth-doped luminescent nanoparticles. Here, a rapid and high-contrast of 104 luminescent switching of Y2O3:Eu3+ nanoparticle between the enhancement and quenching states is achieved by employing the strong light confinement and ultrafast thermal response of localized surface plasmon resonance. A self-encrypted all-optical memory is presented with optical information writing, encryption, reading, and re-writing, and a high-sensitivity synaptic response of emitters to frequency and light intensity flux, which can be harnessed to encrypt information flows and promote convenient and high-security information encryption. Such a convenient and secure plasmonic thermally assisted self-encrypting luminescent switch paves the way for constructing high-performance stimuli-responsive rare earth oxide crystals on demand and expanding their applications in various data encryption, anti-counterfeiting, and rewritable colouration devices.
Keywords:information encryption  luminescence switch  rare earth oxides  surface plasmon resonance  thermal quenching
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