4.8 Article

All-Inorganic Perovskite Nanorod Arrays with Spatially Randomly Distributed Lasing Modes for All-Photonic Cryptographic Primitives

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 13, 期 26, 页码 30891-30901

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c08864

关键词

all-inorganic perovskite; morphology control; random size; lasing-mode number; all-photonic cryptographic primitives

资金

  1. National Natural Science Foundation of China [21775101]
  2. Project 111 from the State Administration of Foreign Experts Affairs [D16002]
  3. Science and Technology Development Fund, Science and Technology Development Fund, Macao SAR [FDCT-0044/2020/A1]
  4. UM's research fund [MYRG2018-00148-IAPME]
  5. Natural Science Foundation of China [61935017]
  6. Natural Science Foundation of Guangdong Province, China [2019A1515012186]
  7. Guangdong-Hong Kong-Macao Joint Laboratory of Optoelectronic and Magnetic Functional Materials [2019B121205002]

向作者/读者索取更多资源

By preparing an all-inorganic perovskite nanorod array with random sizes, all-photonic cryptographic primitives were generated, leading to a highly secure encryption technology. The study found a positive correlation between the lasing mode number and the nanorod length, which can be transformed into a key array following encoding rules, demonstrating superior lasing stability under continuous excitation.
The level of hardware or information security can be increased by applying physical unclonable functions (PUFs), which have a high complexity and unique nonreplicability and are based on random physical patterns generated by nature, to anticounterfeiting and encryption technologies. The preparation of PUFs should be as simple and convenient as possible, while maintaining the high complexity and stability of PUFs to ensure high reliability in use. In this study, an all-inorganic perovskite single-crystal array with a controllable morphology and a random size was prepared by a one-step recrystallization method in a solvent atmosphere to generate all-photonic cryptographic primitives. The nondeterministic size of the perovskite nanorods mainly arises from crystal growth in an indeterminate direction, producing a high entropy for the system. The cavity-size-dependent lasing emission behavior of perovskite single crystals was investigated as a preliminary exploration of the generation of all-photonic cryptographic primitives. The lasing-mode number was positively correlated with the length of the perovskite nanorods. Therefore, the prepared perovskite nanorod array with random sizes can be transformed into a quaternary cryptographic key array following encoding rules based on the lasing-mode number. Superior lasing stability was observed for the all-inorganic perovskite under continuous excitation, demonstrating the high reliability of this system.

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