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Higher-order singularities in phase-tracked electromechanical oscillators

Author

Listed:
  • Xin Zhou

    (College of Intelligence Science and Technology, NUDT)

  • Xingjing Ren

    (College of Intelligence Science and Technology, NUDT)

  • Dingbang Xiao

    (College of Intelligence Science and Technology, NUDT)

  • Jianqi Zhang

    (Innovation Academy of Precision Measurement Science and Technology, Chinese Academy of Sciences)

  • Ran Huang

    (Cluster for Pioneering Research, RIKEN)

  • Zhipeng Li

    (National University of Singapore)

  • Xiaopeng Sun

    (College of Intelligence Science and Technology, NUDT)

  • Xuezhong Wu

    (College of Intelligence Science and Technology, NUDT)

  • Cheng-Wei Qiu

    (National University of Singapore)

  • Franco Nori

    (Cluster for Pioneering Research, RIKEN
    University of Michigan)

  • Hui Jing

    (Hunan Normal University
    Zhengzhou University of Light Industry)

Abstract

Singularities ubiquitously exist in different fields and play a pivotal role in probing the fundamental laws of physics and developing highly sensitive sensors. Nevertheless, achieving higher-order (≥3) singularities, which exhibit superior performance, typically necessitates meticulous tuning of multiple (≥3) coupled degrees of freedom or additional introduction of nonlinear potential energies. Here we propose theoretically and confirm using mechanics experiments, the existence of an unexplored cusp singularity in the phase-tracked (PhT) steady states of a pair of coherently coupled mechanical modes without the need for multiple (≥3) coupled modes or nonlinear potential energies. By manipulating the PhT singularities in an electrostatically tunable micromechanical system, we demonstrate an enhanced cubic-root response to frequency perturbations. This study introduces a new phase-tracking method for studying interacting systems and sheds new light on building and engineering advanced singular devices with simple and well-controllable elements, with potential applications in precision metrology, portable nonreciprocal devices, and on-chip mechanical computing.

Suggested Citation

  • Xin Zhou & Xingjing Ren & Dingbang Xiao & Jianqi Zhang & Ran Huang & Zhipeng Li & Xiaopeng Sun & Xuezhong Wu & Cheng-Wei Qiu & Franco Nori & Hui Jing, 2023. "Higher-order singularities in phase-tracked electromechanical oscillators," Nature Communications, Nature, vol. 14(1), pages 1-9, December.
  • Handle: RePEc:nat:natcom:v:14:y:2023:i:1:d:10.1038_s41467-023-43708-y
    DOI: 10.1038/s41467-023-43708-y
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    as
    1. Hossein Hodaei & Absar U. Hassan & Steffen Wittek & Hipolito Garcia-Gracia & Ramy El-Ganainy & Demetrios N. Christodoulides & Mercedeh Khajavikhan, 2017. "Enhanced sensitivity at higher-order exceptional points," Nature, Nature, vol. 548(7666), pages 187-191, August.
    2. T. Gao & E. Estrecho & K. Y. Bliokh & T. C. H. Liew & M. D. Fraser & S. Brodbeck & M. Kamp & C. Schneider & S. Höfling & Y. Yamamoto & F. Nori & Y. S. Kivshar & A. G. Truscott & R. G. Dall & E. A. Ost, 2015. "Observation of non-Hermitian degeneracies in a chaotic exciton-polariton billiard," Nature, Nature, vol. 526(7574), pages 554-558, October.
    3. Hadiseh Nasari & Gisela Lopez-Galmiche & Helena E. Lopez-Aviles & Alexander Schumer & Absar U. Hassan & Qi Zhong & Stefan Rotter & Patrick LiKamWa & Demetrios N. Christodoulides & Mercedeh Khajavikhan, 2022. "Observation of chiral state transfer without encircling an exceptional point," Nature, Nature, vol. 605(7909), pages 256-261, May.
    4. Javier Pino & Jesse J. Slim & Ewold Verhagen, 2022. "Non-Hermitian chiral phononics through optomechanically induced squeezing," Nature, Nature, vol. 606(7912), pages 82-87, June.
    5. Jae Woong Yoon & Youngsun Choi & Choloong Hahn & Gunpyo Kim & Seok Ho Song & Ki-Yeon Yang & Jeong Yub Lee & Yongsung Kim & Chang Seung Lee & Jai Kwang Shin & Hong-Seok Lee & Pierre Berini, 2018. "Time-asymmetric loop around an exceptional point over the full optical communications band," Nature, Nature, vol. 562(7725), pages 86-90, October.
    6. A. N. Cleland & M. L. Roukes, 1998. "A nanometre-scale mechanical electrometer," Nature, Nature, vol. 392(6672), pages 160-162, March.
    7. Axel M. Eriksson & Oriel Shoshani & Daniel López & Steven W. Shaw & David A. Czaplewski, 2023. "Controllable branching of robust response patterns in nonlinear mechanical resonators," Nature Communications, Nature, vol. 14(1), pages 1-7, December.
    8. Xin Zhou & Chun Zhao & Dingbang Xiao & Jiangkun Sun & Guillermo Sobreviela & Dustin D. Gerrard & Yunhan Chen & Ian Flader & Thomas W. Kenny & Xuezhong Wu & Ashwin A. Seshia, 2019. "Dynamic modulation of modal coupling in microelectromechanical gyroscopic ring resonators," Nature Communications, Nature, vol. 10(1), pages 1-9, December.
    9. Yu-Hung Lai & Yu-Kun Lu & Myoung-Gyun Suh & Zhiquan Yuan & Kerry Vahala, 2019. "Observation of the exceptional-point-enhanced Sagnac effect," Nature, Nature, vol. 576(7785), pages 65-69, December.
    10. R. P. Middlemiss & A. Samarelli & D. J. Paul & J. Hough & S. Rowan & G. D. Hammond, 2016. "Measurement of the Earth tides with a MEMS gravimeter," Nature, Nature, vol. 531(7596), pages 614-617, March.
    11. Jörg Doppler & Alexei A. Mailybaev & Julian Böhm & Ulrich Kuhl & Adrian Girschik & Florian Libisch & Thomas J. Milburn & Peter Rabl & Nimrod Moiseyev & Stefan Rotter, 2016. "Dynamically encircling an exceptional point for asymmetric mode switching," Nature, Nature, vol. 537(7618), pages 76-79, September.
    12. F. Sun & X. Dong & J. Zou & M. I. Dykman & H. B. Chan, 2016. "Correlated anomalous phase diffusion of coupled phononic modes in a sideband-driven resonator," Nature Communications, Nature, vol. 7(1), pages 1-8, November.
    13. Mohammad P. Hokmabadi & Alexander Schumer & Demetrios N. Christodoulides & Mercedeh Khajavikhan, 2019. "Non-Hermitian ring laser gyroscopes with enhanced Sagnac sensitivity," Nature, Nature, vol. 576(7785), pages 70-74, December.
    14. Hossein Hodaei & Absar U. Hassan & Steffen Wittek & Hipolito Garcia-Gracia & Ramy El-Ganainy & Demetrios N. Christodoulides & Mercedeh Khajavikhan, 2017. "Erratum: Enhanced sensitivity at higher-order exceptional points," Nature, Nature, vol. 551(7682), pages 658-658, November.
    15. H. Xu & Luyao Jiang & A. A. Clerk & J. G. E. Harris, 2019. "Nonreciprocal control and cooling of phonon modes in an optomechanical system," Nature, Nature, vol. 568(7750), pages 65-69, April.
    16. Weijian Chen & Şahin Kaya Özdemir & Guangming Zhao & Jan Wiersig & Lan Yang, 2017. "Exceptional points enhance sensing in an optical microcavity," Nature, Nature, vol. 548(7666), pages 192-196, August.
    17. Hiromi Yasuda & Philip R. Buskohl & Andrew Gillman & Todd D. Murphey & Susan Stepney & Richard A. Vaia & Jordan R. Raney, 2021. "Mechanical computing," Nature, Nature, vol. 598(7879), pages 39-48, October.
    18. Simon Gröblacher & Klemens Hammerer & Michael R. Vanner & Markus Aspelmeyer, 2009. "Observation of strong coupling between a micromechanical resonator and an optical cavity field," Nature, Nature, vol. 460(7256), pages 724-727, August.
    19. Rodion Kononchuk & Jizhe Cai & Fred Ellis & Ramathasan Thevamaran & Tsampikos Kottos, 2022. "Exceptional-point-based accelerometers with enhanced signal-to-noise ratio," Nature, Nature, vol. 607(7920), pages 697-702, July.
    20. Shai Maayani & Raphael Dahan & Yuri Kligerman & Eduard Moses & Absar U. Hassan & Hui Jing & Franco Nori & Demetrios N. Christodoulides & Tal Carmon, 2018. "Flying couplers above spinning resonators generate irreversible refraction," Nature, Nature, vol. 558(7711), pages 569-572, June.
    21. H. Xu & D. Mason & Luyao Jiang & J. G. E. Harris, 2016. "Topological energy transfer in an optomechanical system with exceptional points," Nature, Nature, vol. 537(7618), pages 80-83, September.
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