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Two-color laser PEEM imaging of horizontal and vertical components of femtosecond surface plasmon polaritons |
Zhen-Long Zhao(赵振龙), Bo-Yu Ji(季博宇), Lun Wang(王伦), Peng Lang(郎鹏), Xiao-Wei Song(宋晓伟)†, and Jing-Quan Lin(林景全)‡ |
School of Physics, Changchun University of Science and Technology, Changchun 130022, China |
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Abstract Explicit visualization of different components of surface plasmon polaritons (SPPs) propagating at dielectric/metal interfaces is crucial in offering chances for the detailed design and control of the functionalities of plasmonic nanodevices in the future. Here, we reported independent imaging of the vertical and horizontal components of SPPs launched from a rectangular trench in the gold film by a 400-nm laser-assisted near-infrared (NIR) femtosecond laser time-resolved photoemission electron microscopy (TR-PEEM). The experiments demonstrate that distinct imaging of different components of SPPs field can be easily achieved by introducing the 400-nm laser. It can circumvent the risk of sample damage and information loss of excited SPPs field that is generally confronted in the usual NIR laser TR-PEEM scheme. The underlying mechanism for realizing distinct imaging of different components of the SPPs field with two-color PEEM is revealed via measuring the double logarithmic dependence of photoemission yield with the 800-nm and 400-nm pulse powers of different polarizations. Moreover, it is found that the PEEM image quality of the vertical and horizontal components of the SPPs field is nearly independent of the 400-nm pulse polarization. These results pave a way for SPPs-based applications and offer a possible solution for drawing a space—time field of SPPs in three dimensions.
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Received: 12 April 2022
Revised: 03 July 2022
Accepted manuscript online:
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PACS:
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71.45.Gm
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(Exchange, correlation, dielectric and magnetic response functions, plasmons)
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73.20.Mf
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(Collective excitations (including excitons, polarons, plasmons and other charge-density excitations))
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Fund: Project supported by the National Natural Science Foundation of China (Grant Nos. 62005022, 12004052, and 62175018), the Fund from Jilin Provincial Key Laboratory of Ultrafast and Extreme Ultraviolet Optics (Grant No. YDZJ202102CXJD028), Department of Science and Technology of the Jilin Province, China (Grant Nos. 20200201268JC and 20200401052GX), the “111” Project of China (Grant No. D17017), and the Fund from the Ministry of Education Key Laboratory for Cross-Scale Micro and Nano Manufacturing, Changchun University of Science and Technology. |
Corresponding Authors:
Xiao-Wei Song, Jing-Quan Lin
E-mail: songxiaowei@cust.edu.cn;linjingquan@cust.edu.cn
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Cite this article:
Zhen-Long Zhao(赵振龙), Bo-Yu Ji(季博宇), Lun Wang(王伦), Peng Lang(郎鹏), Xiao-Wei Song(宋晓伟), and Jing-Quan Lin(林景全) Two-color laser PEEM imaging of horizontal and vertical components of femtosecond surface plasmon polaritons 2022 Chin. Phys. B 31 107104
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[1] Bai M, Guerrero C, Ioanid S, et al. 2004 Phys. Rev. B 69 115416 [2] Gramotnev D K and Bozhevolnyi S I 2010 Nat. Photon. 4 83 [3] Macdonald K F and Sámson Z L 2009 Nat. Photon. 3 55 [4] Cao L and Brongersma M L 2009 Nat. Photon. 1 12 [5] Kriesch A, Burgos S P, Ploss D, et al. 2013 Nano Lett. 13 4539 [6] Fang Z and Fan L 2011 Nano Lett. 4 11 [7] Takeuchi K and Yamamoto N 2011 Opt. Express 13 12365 [8] Takumi S and Andrea K 2020 Nano Lett. 20 592 [9] Wild B, Cao L, Sun Y, et al. 2011 ACS Nano 6 472 [10] Nauert S, Paul A, Zhen Y R, et al. 2014 ACS Nano 8 572 [11] El-Khoury P Z, Abellan P, Gong Y, et al. 2016 Analyst 141 3562 [12] Losquin A and Lummen T T A, et al. 2017 Frontiers of Physics 12 127301 [13] Dabrowski M, Dai Y and Petek H 2017 J. Phys. Chem. Lett. 18 4446 [14] Dai Y, Dabrowski M and Petek H 2018 ACS Nano 12 6588 [15] Qin Y L, Ji B Y, Song X W and Lin J Q 2021 Photon. Res. 9 514 [16] Yin L and Vlasko-Vlasov V K 2005 Nano Lett. 5 1399 [17] Bliokh K Y and Nori F 2012 Phys. Rev. A 85 1577 [18] Liu Z W, Jennifer, et al. 2005 Nano Lett. 5 1726 [19] Podbiel D, Kahl P, Makris A, et al. 2017 Nano Lett. 17 6569 [20] Petr Dvoák, Tomá Neuman, Luká Bínek, et al. 2013 Nano Lett. 13 2558 [21] Choo H and Kim 2012 Nat. Photon. 12 6 [22] Davoyan A R and Shadrivov I V 2010 Phys. Rev. Lett. 11 105 [23] Tugchin B N, Janunts N, Klein A E, et al. 2015 ACS Photon. 2 1468 [24] Le Feber B and Rotenberg N 2014 Opt. Lett. 39 2802 [25] Podbiel D and Kahl P 2016 Appl. Phys. B 122 90 [26] Kahl P, Wall S, Witt C, et al. 2014 Plasmonics 9 1401 [27] Qin Y and Song X 2020 Photon. Res. 8 1042 [28] Qin Y, Xu Y, Ji B, et al. 2022 Appl. Phys. B 128 83 [29] Zhao Z L, Ji B Y, Wang G Q, Qin Y L, Song X W and Lin J Q 2021 Opt. Mater. Express 11 2806 [30] Zhao Z and Lang P 2020 Opt. Express 28 19023 [31] Ji B and Song X 2018 New J. Phys. 20 073031 [32] Tan S, Liu L, Dai Y, et al. 2017 J Am. Chem. Soc. 139 6160 [33] Petek H, et al. 1997 Prog. Surf. Sci. 56 239 [34] Foerster M, Paschen T, Krueger M, et al. 2016 Phys. Rev. Lett. 117 217601 |
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