Parity-time symmetry in optical microcavity systems
arXiv:1807.03645 · doi:10.1088/1361-6455/aae42f
Abstract
Canonical quantum mechanics postulates Hermitian Hamiltonians to ensure real eigenvalues. Counterintuitively, a non-Hermitian Hamiltonian, satisfying combined parity-time (PT) symmetry, could display entirely real spectra above some phase-transition threshold. Such a counterintuitive discovery has aroused extensive theoretical interest in extending canonical quantum theory by including non-Hermitian but PT-symmetric operators in the last two decades. Despite much fundamental theoretical success in the development of PT-symmetric quantum mechanics, an experimental observation of pseudo-Hermiticity remains elusive as these systems with a complex potential seem absent in Nature. But nevertheless, the notion of PT symmetry has highly survived in many other branches of physics including optics, photonics, AMO physics, acoustics, electronic circuits, material science over the past ten years, and others, where a judicious balance of gain and loss constitutes a PT-symmetric system. Here, although we concentrate upon reviewing recent progress on PT symmetry in optical microcavity systems, we also wish to present some new results that may help to accelerate the research in the area. Such compound photonic structures with gain and loss provide a powerful platform for testing various theoretical proposals on PT symmetry, and initiate new possibilities for shaping optical beams and pulses beyond conservative structures. Throughout this article there is an effort to clearly present the physical aspects of PT-symmetry in optical microcavity systems, but mathematical formulations are reduced to the indispensable ones. Readers who prefer strict mathematical treatments should resort to the extensive list of references. Despite the rapid progress on the subject, new ideas and applications of PT symmetry using optical microcavities are still expected in the future.
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Cited by in corpus (13)
- Quantum magnonics: when magnon spintronics meets quantum information science
- Anti-Parity-Time Symmetric Optical Four-Wave Mixing in Cold Atoms
- Exceptional magnetic sensitivity of PT-symmetric cavity magnon polaritons
- Steering between Level Repulsion and Attraction: Broad tunability of Two-Port Driven Cavity Magnon-Polaritons
- Experimental Observation of Partial Parity-Time Symmetry and Its Phase Transition with a Laser-Driven Cesium Atomic Gas
- Poincaré symmetries and representations in pseudo-Hermitian quantum field theory
- Dynamic Control of Coupling Regimes in Oscillator Systems via Tunable Open Channels
- Negative Gilbert damping in cavity optomagnonics
- Dual opposing quadrature-PT symmetry
- Improved coherence time of a non-Hermitian qubit in a -symmetric Environment
- Emulating exceptional-point encirclements using imperfect (leaky) photonic components
- CPA-lasing associated with the quasibound states in the continuum in asymmetric non-Hermitian structures
- Enhancement of quantum sensing in a dissipatively coupled two-mode system