Robust optical physical unclonable function using disordered photonic integrated circuits
Author:
Bin Tarik Farhan1, Famili Azadeh1, Lao Yingjie1, Ryckman Judson D.1ORCID
Affiliation:
1. Holcombe Department of Electrical and Computer Engineering , Clemson University , Clemson , South Carolina, 29634 , USA
Abstract
Abstract
Physical unclonable function (PUF) has emerged as a promising and important security primitive for use in modern systems and devices, due to their increasingly embedded, distributed, unsupervised, and physically exposed nature. However, optical PUFs based on speckle patterns, chaos, or ‘strong’ disorder are so far notoriously sensitive to probing and/or environmental variations. Here we report an optical PUF designed for robustness against fluctuations in optical angular/spatial alignment, polarization, and temperature. This is achieved using an integrated quasicrystal interferometer (QCI) which sensitively probes disorder while: (1) ensuring all modes are engineered to exhibit approximately the same confinement factor in the predominant thermo-optic medium (e. g. silicon), and (2) constraining the transverse spatial-mode and polarization degrees of freedom. This demonstration unveils a new means for amplifying and harnessing the effects of ‘weak’ disorder in photonics and is an important and enabling step toward new generations of optics-enabled hardware and information security devices.
Funder
Air Force Office of Scientific Research Clemson University Natural Sciences and Engineering Research Council of Canada
Publisher
Walter de Gruyter GmbH
Subject
Electrical and Electronic Engineering,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials,Biotechnology
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