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Quantum correlations in molecular cavity optomechanics

Author

Listed:
  • Berinyuy, E. Kongkui
  • Massembele, D.R. Kenigoule
  • Djorwé, P.
  • Altuijri, R.
  • Abdel-Khalek, S.
  • Abdel-Aty, A.-H.
  • Engo, S.G. Nana

Abstract

Quantum correlations are interesting resources for modern quantum technologies such as quantum information processing, quantum communication, quantum teleportation, and quantum computation tasks. However, engineering these quantum states turns to be not an easy task. Here, we unveil a theoretical framework for generating and controlling quantum correlations within a double-cavity molecular optomechanical (McOM) system. Our approach leverages strong interactions between confined optical fields and collective molecular vibrations, creating a versatile environment for exploring robust quantum correlations. Our findings reveal that by judiciously optimizing the coupling strength between the cavity field and the molecular collective mode leads to significant enhancement of entanglement, quantum steering, and quantum discord. We demonstrate that cavity-cavity quantum correlations can be effectively mediated by the molecular collective mode, enabling a unique pathway for inter-cavity quantum connectivity. Moreover, the quantum entanglement generated in our McOM system exhibits robustness against thermal noise, persisting up to temperatures approaching 1000 K. This strong resilience, qualifies molecular optomechanics as a compelling architecture for scalable, room-temperature quantum information processing and the practical realization of quantum networks. Additionally, the phase-dependent behavior of quantum discord provides a fundamental basis for developing ultra-sensitive gas sensors, with potential applications in environmental monitoring, medical diagnostics, and industrial safety.

Suggested Citation

  • Berinyuy, E. Kongkui & Massembele, D.R. Kenigoule & Djorwé, P. & Altuijri, R. & Abdel-Khalek, S. & Abdel-Aty, A.-H. & Engo, S.G. Nana, 2026. "Quantum correlations in molecular cavity optomechanics," Chaos, Solitons & Fractals, Elsevier, vol. 205(C).
  • Handle: RePEc:eee:chsofr:v:205:y:2026:i:c:s096007792501834x
    DOI: 10.1016/j.chaos.2025.117820
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    References listed on IDEAS

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    1. Brian Julsgaard & Alexander Kozhekin & Eugene S. Polzik, 2001. "Experimental long-lived entanglement of two macroscopic objects," Nature, Nature, vol. 413(6854), pages 400-403, September.
    2. Jin-Shi Xu & Xiao-Ye Xu & Chuan-Feng Li & Cheng-Jie Zhang & Xu-Bo Zou & Guang-Can Guo, 2010. "Experimental investigation of classical and quantum correlations under decoherence," Nature Communications, Nature, vol. 1(1), pages 1-6, December.
    3. Peng, Jia-Xin & Zhao, Chengsong & Djorwe, P. & Emale, Kongkui Berinyuy & Yu, Zhong-Wei & Asjad, Muhammad, 2025. "Macroscopic quantum coherence and quantum complete synchronization in molecular optomechanical system," Chaos, Solitons & Fractals, Elsevier, vol. 197(C).
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