Ultrasensitive micro-scale parity-time-symmetric ring laser gyroscope
2017-04-07
SCID: 54.1/qdc9zyaz
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exceptional pointsnon-Hermitian degeneraciesparity-time-symmetric ring laser gyroscopesquare-root frequency splittingultrasensitive miniature on-chip ring laser gyroscope
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Abstract (AI)
We propose a new scheme for ultrasensitive laser gyroscopes that utilizes the physics of exceptional points. By exploiting the properties of such non-Hermitian degeneracies, we show that the rotation-induced frequency splitting becomes proportional to the square root of the gyration speed (Ω), thus enhancing the sensitivity to low angular rotations by orders of magnitudes. In addition, at its maximum sensitivity limit, the measurable spectral splitting is independent of the radius of the rings involved. This Letter paves the way toward a new class of ultrasensitive miniature ring laser gyroscopes on chip.
Key Findings
1
At the maximum sensitivity limit, the measurable spectral splitting is independent of the ring radius.
2
Square-root dependence enhances sensitivity to low angular rotations by orders of magnitude compared to linear scaling.
3
The proposed scheme enables ultrasensitive, miniature on-chip ring laser gyroscopes leveraging exceptional-point physics.
4
Using exceptional points in non-Hermitian (parity-time-symmetric) ring lasers makes rotation-induced frequency splitting scale as the square root of rotation speed (Ω).
Research Object
Micro-scale parity-time-symmetric ring laser gyroscope system exploiting exceptional points
Research Subject
Enhancement of rotation sensitivity: rotation-induced frequency/spectral splitting scaling (proportional to sqrt(Ω)), sensitivity limits (including radius-independence at maximum sensitivity) and ultrasensitive detection of low angular rotations
Publication Details
Publication Date
2017-04-07
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