|
|
|
Generating three transparency windows, Fano-resonance, and slow/fast light in magnomechanical system through an auxiliary microwave cavity |
| M'bark Amghar1, Noura Chabar1, Amjad Sohail2,3, and Mohamed Amazioug1,† |
1 LPTHE-Department of Physics, Faculty of sciences, Ibnou Zohr University, Agadir, Morocco; 2 Department of Physics, Government College University, Allama Iqbal Road, Faisalabad 38000, Pakistan; 3 Instituto de Física Gleb Wataghin, Universidade Estadual de Campinas, Campinas, SP, Brazil |
|
|
|
|
Abstract In this paper, we propose a theoretical scheme to investigate the magnomechanically induced transparency (MMIT) phenomenon, Fano resonances, and slow/fast light effects in a hybrid cavity magnomechanical system. The magnomechanical system consists of two cavities: the principal cavity contains two ferromagnetic yttrium iron garnet (YIG) spheres, and the auxiliary cavity contains an atomic assembly. These two cavities are connected via photon tunneling, with the principal cavity being driven by two electromagnetic fields. The photon-magnon and phonon-magnon couplings are responsible for the magnon-induced transparency (MIT) and MMIT observed in the probe output spectrum. Furthermore, we examine the impacts of tunneling coupling, atom-photon coupling, and the magnetic field on the absorption, dispersion, and transmission spectra. We provide an explanation of the mechanism behind the Fano resonance phenomenon. Additionally, we address the phenomenon of slow and fast light propagation. Moreover, we demonstrate that the group delay of the probe field can be enhanced by increasing the photon tunneling strength. We also show that the slow light profile is reduced by adjusting the atom-photon coupling strength. This model is experimentally feasible, and we anticipate that these findings have potential applications in quantum information processing and communication.
|
Received: 04 September 2025
Revised: 20 October 2025
Accepted manuscript online:
|
|
PACS:
|
03.67.-a
|
(Quantum information)
|
| |
03.75.Lm
|
(Tunneling, Josephson effect, Bose-Einstein condensates in periodic potentials, solitons, vortices, and topological excitations)
|
|
Corresponding Authors:
Mohamed Amazioug
E-mail: m.amazioug@uiz.ac.ma
|
Cite this article:
M'bark Amghar, Noura Chabar, Amjad Sohail, and Mohamed Amazioug Generating three transparency windows, Fano-resonance, and slow/fast light in magnomechanical system through an auxiliary microwave cavity 2026 Chin. Phys. B 35 050306
|
[1] Harris S E 1997 Phys. Today 50 36 [2] Harris S E, Field J E and Imamoglu A 1990 Phys. Rev. Lett. 64 1107 [3] Boller K J, Imamoglu A and Harris S E 1991 Phys. Rev. Lett. 66 2593 [4] Fleischhauer M, Imamoglu A and Marangos J P 2005 Rev. Mod. Phys. 77 633 [5] Lvovsky A I, Sanders B C and Tittel W 2009 Nat. Photonics 3 706 [6] Fleischhauer M and Lukin M D 2002 Phys. Rev. A 65 022314 [7] Kocharovskaya O, Rostovtsev Y and Scully M O 2001 Phys. Rev. Lett. 86 628 [8] Turukhin A V, Sudarshanam V S, Shahriar M S, Musser J A, Ham B S and Hemmer P R 2001 Phys. Rev. Lett. 88 023602 [9] Jain M, Xia H, Yin G Y, Merriam A J and Harris S E 1996 Phys. Rev. Lett. 77 4326 [10] Weis S, Riviere R, Deleglise S, Gavartin E, Arcizet O, Schliesser A and Kippenberg T J 2010 Science 330 1520 [11] Shen J Q and He S 2006 Phys. Rev. A 74 063831 [12] Chang Y and Sun C P 2011 Phys. Rev. A 83 053834 [13] Paspalakis E and Knight P L 2002 Phys. Rev. A 66 015802 [14] Diniz E C, Borges H S and Villas-Boas C J 2018 Phys. Rev. A 97 043848 [15] Yang X D, Yu M B, Kwong D L and Wong C W 2009 Phys. Rev. Lett. 102 173902 [16] Luo X Q, Wang D L, Zhang Z Q, Ding J W and Liu W M 2011 Phys. Rev. A 84 033803 [17] Patnaik A K, Liang J Q and Hakuta K 2002 Phys. Rev. A 66 063808 [18] Aspelmeyer M, Kippenberg T J and Marquardt F 2014 Rev. Mod. Phys. 86 1391 [19] Teufel J D, Li D, Allman M S, Cicak K, Sirois A J, Whittaker J D and Simmonds R W 2011 Nature 471 204 [20] Agarwal G S and Huang S 2012 Phys. Rev. A 85 021801 [21] Zhang J Q, Li Y, Feng M and Xu Y 2012 Phys. Rev. A 86 053806 [22] Huang S M and Agarwal G S 2010 Phys. Rev. A 81 033830 [23] Li X Y, Nie W J, Chen A X and Lan Y H 2018 Phys. Rev. A 98 053848 [24] Wu S C, Qin L G, Jing J, Yan T M and Lu J 2018 Phys. Rev. A 98 013807 [25] Amazioug M, Daoud M, Singh S K and Asjad M 2023 Quantum Inf. Process. 22 301 [26] Han Y, Cheng J and Zhou L 2011 J. Phys. B: At. Mol. Opt. Phys. 44 165505 [27] Tesfahannes T G 2021 Quantum Inf. Process. 20 116 [28] Abdi M and Plenio M B 2019 Phys. Rev. Lett. 122 023602 [29] Asjad M 2013 J. Russ. Laser Res. 34 159 [30] Shahidani S, Naderi M H and Soltanolkotabi M 2013 Phys. Rev. A 88 053813 [31] Huebl H, Zollitsch C W, Lotze J, Hocke F, Greifenstein M, Marx A, Gross R and Goennenwein S T 2013 Phys. Rev. Lett. 111 127003 [32] Zhang X F, Zou C L, Jiang L and Tang H X 2014 Phys. Rev. Lett. 113 156401 [33] Tabuchi Y, Ishino S, Ishikawa T, Yamazaki R, Usami K and Nakamura Y 2014 Phys. Rev. Lett. 113 083603 [34] Bai L, Harder M, Chen Y P, Fan X, Xiao J Q and Hu C M 2015 Phys. Rev. Lett. 114 227201 [35] Goryachev M, FarrWG, Creedon D L, Fan Y H, KostylevMand Tobar M E 2014 Phys. Rev. Appl. 2 054002 [36] Zhang D, Wang X M, Li T F, Luo X Q, Wu W D, Nori F and You J Q 2015 npj Quantum Inf. 1 15014 [37] Soykal O O and Flatt M E 2010 Phys. Rev. Lett. 104 077202 [38] Zhang X, Zhu N, Zou C L and Tang H X 2016 Phys. Rev. Lett. 117 123605 [39] Tabuchi Y, Ishino S, Noguchi A, Ishikawa T, Yamazaki R, Usami K and Nakamura Y 2015 Science 349 405 [40] Potts C A, Varga E, Bittencourt V A, Kusminskiy S V and Davis J P 2021 Phys. Rev. X 11 031053 [41] Yang Z X, Wang L, Liu Y M, Wang D Y, Bai C H, Zhang S and Wang H F 2020 Front. Phys. 15 52504 [42] Chabar N, AmgharMand Amazioug M 2024 Phys. Lett. A 519 129712 [43] Amghar M and Amazioug M 2024 Optik 311 171940 [44] Amazioug M, Teklu B and Asjad M 2023 Sci. Rep. 13 3833 [45] Li J and Zhu S Y 2019 New J. Phys. 21 085001 [46] Amghar M, Chabar N and Amazioug M 2024 Chin. Phys. B 33 120308 [47] Amghar M, Chabar N and Amazioug M 2024 J. Opt. Soc. Am. B 42 120 [48] Liao Q, Peng K and Qiu H 2023 Chin. Phys. B 32 054205 [49] Ullah K, Naseem M T and Müstecaplıoğlu Ö E 2020 Phys. Rev. A 102 033721 [50] Lu H, Wang C Q, Yang L and Jing H 2018 Phys. Rev. Appl. 10 014006 [51] Sohail A, Arif R, Akhtar N, Ziauddin, Peng J X, Xianlong G and Gu Z 2023 Eur. Phys. J. Plus 138 417 [52] Sohail A, Ahmed R and Ali H 2024 arXiv:2405.09845 [quant-ph] [53] Shen R C, Li J, Fan Z Y, Wang Y P and You J Q 2022 Phys. Rev. Lett. 129 123601 [54] Wang Y P, Zhang G Q, Zhang D K, Li T F, Hu C M and You J Q 2018 Phys. Rev. Lett. 120 057202 [55] Diederich G M, Cenker J, Ren Y, Fonseca J, Chica D G, Bae Y J, Zhu X, Roy X, Cao T, Xiao D and Xu X 2023 Nat. Nanotechnol. 18 23 [56] Fano U 1961 Phys. Rev. 124 1866 [57] Zhang X, Zou C L, Jiang L and Tang H X 2016 Sci. Adv. 2 e1501286 [58] Qu K and Agarwal G S 2013 Phys. Rev. A 87 063813 [59] Liu Z Q, Liu L, Meng Z Z, Tan L and Liu W M 2023 Opt. Express 32 722 [60] Bai C H, Wang D Y, Wang H F, Zhu A D and Zhang S 2016 Sci. Rep. 6 33404 [61] Chen B, Shang L, Wang X F, Chen J B, Xue H B, Liu X and Zhang J 2019 Phys. Rev. A 99 063810 [62] Holstein T and Primakoff H 1940 Phys. Rev. 58 1098 [63] Hammerer K, Sørensen A S and Polzik E S 2010 Rev. Mod. Phys. 82 1041 [64] Zheng S B 2012 Phys. Rev. A 86 013828 [65] Genes C, Vitali D and Tombesi P 2008 Phys. Rev. A 77 050307 [66] Li J, Zhu S Y and Agarwal G S 2018 Phys. Rev. Lett. 121 203601 [67] Xiong H and Wu Y 2018 Appl. Phys. Rev. 5 011303 [68] Huang S and Agarwal G S 2011 Phys. Rev. A 83 043826 [69] Walls D and Milburn G 2007 Quantum Optics pp. 30–49 (Berlin: Springer) [70] Dilawaiz, Qamar S and Irfan M 2024 Phys. Rev. A 109 043708 [71] Liao Q, Xiao X, Nie W and Zhou N 2020 Opt. Express 28 5288 [72] Amghar M and Amazioug M 2024 Int. J. Quantum Inf. 22 2450043 [73] Tarhan D, Huang S and Müstecaplıoğlu Ö E 2013 Phys. Rev. A 87 013824 |
| No Suggested Reading articles found! |
|
|
Viewed |
|
|
|
Full text
|
|
|
|
|
Abstract
|
|
|
|
|
Cited |
|
|
|
|
Altmetric
|
|
blogs
Facebook pages
Wikipedia page
Google+ users
|
Online attention
Altmetric calculates a score based on the online attention an article receives. Each coloured thread in the circle represents a different type of online attention. The number in the centre is the Altmetric score. Social media and mainstream news media are the main sources that calculate the score. Reference managers such as Mendeley are also tracked but do not contribute to the score. Older articles often score higher because they have had more time to get noticed. To account for this, Altmetric has included the context data for other articles of a similar age.
View more on Altmetrics
|
|
|