Optical gyroscopes, which exploit the Sagnac effect, are one of the preferred choices for high-resolution sensing of angular velocity. However, their miniaturization and integration for high-resolution sensing is still a challenge in optoelectronics research. In fact, in interferometric fiber-optic gyroscopes (IFOGs) the sensitivity is proportional to the area enclosed by the fiber-optic sensing coil. Whereas, in resonant fiber-optic gyroscopes (RFOGs) and resonant micro-optical gyroscopes (RMOGs) the sensitivity is proportional to the ratio between the area enclosed by the cavity and the perimeter of the cavity. Non-Hermitian optical architectures (especially with parity-time-symmetric Hamiltonians) have been recently proposed in literature to solve this scaling problem. In this work, an anti-parity-time-symmetric gyroscope has been designed with two resonant cavities, indirectly coupled via an auxiliary bus. At the operating condition of the so-called "exceptional point", it is possible to demonstrate that the sensitivity of the gyroscope is independent of the dimensions of the device. Finally, it will be shown that the anti-parity-time-symmetric architectures represent a better choice for angular velocity sensing than the parity-time symmetric version. An enhancement of the sensitivity of several orders of magnitude with respect to standard Sagnac-based gyros with the same footprint is expected.

Indirectly-coupled optical resonators for anti-parity-time-symmetric gyroscopes / De Carlo, M; De Leonardis, F; Dell'Olio, F; Peliti, P; Berton, F; Lucchesini, M; Passaro, Vmn. - In: ...INTERNATIONAL SYMPOSIUM ON INERTIAL SENSORS AND SYSTEMS. - ISSN 2377-3464. - (2022), pp. 1-4. [10.1109/INERTIAL53425.2022.9787722]

Indirectly-coupled optical resonators for anti-parity-time-symmetric gyroscopes

De Carlo, M
Membro del Collaboration Group
;
De Leonardis, F
Membro del Collaboration Group
;
Dell'Olio, F
Membro del Collaboration Group
;
Passaro, VMN
Supervision
2022-01-01

Abstract

Optical gyroscopes, which exploit the Sagnac effect, are one of the preferred choices for high-resolution sensing of angular velocity. However, their miniaturization and integration for high-resolution sensing is still a challenge in optoelectronics research. In fact, in interferometric fiber-optic gyroscopes (IFOGs) the sensitivity is proportional to the area enclosed by the fiber-optic sensing coil. Whereas, in resonant fiber-optic gyroscopes (RFOGs) and resonant micro-optical gyroscopes (RMOGs) the sensitivity is proportional to the ratio between the area enclosed by the cavity and the perimeter of the cavity. Non-Hermitian optical architectures (especially with parity-time-symmetric Hamiltonians) have been recently proposed in literature to solve this scaling problem. In this work, an anti-parity-time-symmetric gyroscope has been designed with two resonant cavities, indirectly coupled via an auxiliary bus. At the operating condition of the so-called "exceptional point", it is possible to demonstrate that the sensitivity of the gyroscope is independent of the dimensions of the device. Finally, it will be shown that the anti-parity-time-symmetric architectures represent a better choice for angular velocity sensing than the parity-time symmetric version. An enhancement of the sensitivity of several orders of magnitude with respect to standard Sagnac-based gyros with the same footprint is expected.
2022
978-1-6654-0282-8
Indirectly-coupled optical resonators for anti-parity-time-symmetric gyroscopes / De Carlo, M; De Leonardis, F; Dell'Olio, F; Peliti, P; Berton, F; Lucchesini, M; Passaro, Vmn. - In: ...INTERNATIONAL SYMPOSIUM ON INERTIAL SENSORS AND SYSTEMS. - ISSN 2377-3464. - (2022), pp. 1-4. [10.1109/INERTIAL53425.2022.9787722]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11589/253021
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