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Quantum Thermodynamics
Decoherence-free Behaviors of Quantum Emitters in Dissipative Photonic Graphene
arXiv
Authors: Qing-Yang Qiu, Guoqing Tian, Zhi-Guang Lu, Franco Nori, Xin-You Lü
Year
2026
Paper ID
28522
Status
Preprint
Abstract Read
~2 min
Abstract Words
150
Citations
N/A
Abstract
Achieving decoherence-free quantum state manipulation is a paramount goal in modern quantum technologies. To this end, we demonstrate its implementation in a two-dimensional dissipative photonic graphene featuring exceptional rings. Employing the resolvent method, we analytically explore the quantum dynamics of emitters coupled to photonic graphene. In the thermodynamic limit, our analysis predicts a dissipation-dependent logarithmic relaxation for a single quantum emitter, alongside a pronounced quantum Zeno effect that slows the decay with increased dissipation. Notably, within a finite lattice, the excitation of single quantum emitter stabilizes in a decoherence-protected quantum state, which is identified as a dissipation-robust quasilocalized state. Interestingly, this state, together with a dark state, facilitates decoherence-free interactions between quantum emitters. This capability can be extended to topological graphenic platforms, where edge states mediate analogous protected interactions among giant atoms. Our findings highlight a promising path toward protecting quantum coherence in practical, high-dimensional photonic environment through dissipation engineering.
Why This Paper Matters
- This paper contributes to the Quantum Thermodynamics research area in the Quantum Articles archive.
- It adds a 2026 reference point for readers tracking recent quantum research.
- Achieving decoherence-free quantum state manipulation is a paramount goal in modern quantum technologies.
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