ELECTROMAGNETISM, OPTICS, ACOUSTICS, HEAT TRANSFER, CLASSICAL MECHANICS, AND FLUID DYNAMICS |
Prev
Next
|
|
|
Cherenkov terahertz radiation from Dirac semimetals surface plasmon polaritons excited by an electron beam |
Tao Zhao(赵陶), Zhenhua Wu(吴振华) |
Terahertz Research Center, School of Electronic Science and Engineering, University of Electronic Science and Technology of China, Chengdu 610054, China |
|
|
Abstract We demonstrate a physical mechanism for terahertz (THz) generation from surface plasmon polaritons (SPPs). In a structure with a bulk Dirac semimetals (BDSs) film deposited on a dielectric substrate, the energy of the asymmetric SPP mode can be significantly enhanced to cross the light line of the substrate due to the SPP-coupling between the interfaces of the film. Therefore, the SPPs can be immediately transformed into Cherenkov radiation without removing the wavevector mismatch. Additionally, the symmetric SPP mode can also be dramatically lifted to cross the substrate light line when a buffer layer with low permittivity relative to the substrate is introduced. In this case, dual-frequency THz radiation from the two SPP modes can be generated simultaneously. The radiation intensity is significantly enhanced by over two orders due to the field enhancement of the SPPs. The radiation frequency can be tuned in the THz frequency regime by adjusting the beam energy and the chemical potential of the BDSs. Our results could find potential applications in developing room temperature, tunable, coherent, and intense THz radiation sources to cover the entire THz band.
|
Received: 28 October 2019
Revised: 09 December 2019
Accepted manuscript online:
|
PACS:
|
41.60.-m
|
(Radiation by moving charges)
|
|
73.20.Mf
|
(Collective excitations (including excitons, polarons, plasmons and other charge-density excitations))
|
|
78.67.-n
|
(Optical properties of low-dimensional, mesoscopic, and nanoscale materials and structures)
|
|
Fund: Project supported by the National Key Research and Development Program of China (Grant No. 2017YFA0701000), the National Key Scientific Instrument and Equipment Development of China (Grant No. 2018YFF01013001), and the National Natural Science Foundation of China (Grant Nos. 61701084 and 61505022). |
Corresponding Authors:
Zhenhua Wu
E-mail: wuzhenhua@uestc.edu.cn
|
Cite this article:
Tao Zhao(赵陶), Zhenhua Wu(吴振华) Cherenkov terahertz radiation from Dirac semimetals surface plasmon polaritons excited by an electron beam 2020 Chin. Phys. B 29 034101
|
[1] |
Borisenko S, Gibson Q, Evtushinsky D, Zabolotnyy V, Büchner B and Cava R J 2014 Phys. Rev. Lett. 113 027603
|
[2] |
Neupane M, et al. 2014 Nat. Commun. 5 3786
|
[3] |
Liu Z K, et al. 2014 Nat. Mater. 13 677
|
[4] |
Liu Z K, et al. 2014 Science 343 864
|
[5] |
Li Q, Kharzeev D E, Zhang C, Huang Y, Pletikosic I, Fedorov A V, Zhong R D, Schneeloch J A, Gu G D and Valla T 2016 Nat. Phys. 12 550
|
[6] |
Hwang E and Sarma S 2007 Phys. Rev. B 75 205418
|
[7] |
Koppens F, Chang D and García de Abajo F 2011 Nano Lett. 11 8
|
[8] |
Ju L, et al. 2011 Nat. Nanotechnol. 6 630
|
[9] |
Vakil A and Engheta N 2011 Science 332 6035
|
[10] |
Babak P, Hassan R S and Mohamed E 2018 Opt. Quantum Electron. 50 303
|
[11] |
Zhu H, Deng M, Chen S and Chen L 2019 Opt. Lett. 50 3382
|
[12] |
Jablan M, Buljan H and Soljačić M 2009 Phys. Rev. B 80 245435
|
[13] |
Grigorenko A, Polini M and Novoselov K S 2012 Nat. Photon. 6 749
|
[14] |
Liang T, Gibson Q, Ali M N, Liu M, Cava R J and Ong N P 2015 Nat. Mater. 14 280
|
[15] |
Kotov O V and Lozovik Yu E 2016 Phys. Rev. B 93 235417
|
[16] |
Das Sarma S and Hwang E H 2009 Phys. Rev. Lett. 102 206412
|
[17] |
Kharzeev D E, Pisarski R D and Yee H U 2015 Phys. Rev. Lett. 115 236402
|
[18] |
Hofmann J and Das Sarma S 2015 Phys. Rev. B 91 241108(R)
|
[19] |
Thakur A, Sachdeva R and Agarwal A 2017 J. Phys.: Condens. Matter 29 105701
|
[20] |
Lošić Z B 2017 J. Phys.: Condens. Matter 30 045002
|
[21] |
Siegel P 2002 IEEE Trans. Microw. Theory Tech. 50 910
|
[22] |
Tonouchi M 2007 Nat. Photon. 1 97
|
[23] |
Horiuchi N 2010 Nat. Photon. 4 140
|
[24] |
Dean P, et al. 2014 J. Phys. D: Appl. Phys. 47 374008
|
[25] |
Liu S G, Zhang C, Hu M, Chen X X, Zhang P, Gong S, Zhao T and Zhong R B 2014 Appl. Phys. Lett. 104 201104
|
[26] |
Zhan T, Han D, Hu X, Liu X, Chui S and Zi J 2014 Phys. Rev. B 89 245434
|
[27] |
Zhao T, Zhong R B, Hu M, Chen X X, Zhang P, Gong S and Liu S G 2015 Chin. Phys. B 24 094102
|
[28] |
Gong S, Zhao T, Sanderson M, Hu M, Chen X X, Zhang P, Zhong R B, Zhang C and Liu S G 2015 Appl. Phys. Lett. 106 223107
|
[29] |
Zhao T, et al. 2015 Sci. Rep. 5 16059
|
[30] |
Li D, Wang Y, Nakajima M, Hashida M, Wei Y and Miyamoto S 2016 Phys. Lett. A 380 2181
|
[31] |
Zhao T, Hu M, Zhong R B, Gong S, Zhang C and Liu S G 2017 Appl. Phys. Lett. 110 231102
|
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
|
|
|