CONDENSED MATTER: ELECTRONIC STRUCTURE, ELECTRICAL, MAGNETIC, AND OPTICAL PROPERTIES |
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Enhanced circular dichroism of TDBC in a metallic hole array structure |
Tiantian He(何田田)1, Qihui Ye(叶起惠)2, Gang Song(宋钢)3 |
1 School of Electronic Engineering, Beijing University of Posts and Telecommunications, Beijing 100876, China; 2 International School, Beijing University of Posts and Telecommunications, Beijing 100876, China; 3 School of Science, Beijing University of Posts and Telecommunications, Beijing 100876, China |
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Abstract We investigate the enhanced chirality of chiral molecular J-aggregates (TDBC) by the propagating surface plasmons (PSPs) in the metallic hole array structure filled with TDBC. The two ends of the hole in the metal film form a low quality factor Fabry-Perot (FP) cavity, and this cavity confines PSPs. The resonant wavelength of the metallic hole array is tuned by the lattice constant and the size of the hole. Both the resonant wavelength of Ag hole array and the volume ratio of TDBC in the hybridized structure influence on the enhancement of the circular dichroism (CD) spectrum. The curve of CD spectrum shows Fano-like line-shape, due to the interaction between the non-radiative field in the FP cavity and the radiative field in chiral TDBC. The maximum of the CD spectrum of the hybridized structure is 0.025 times as the one of the extinction spectrum in a certain structure, while the maximum of the CD spectrum of TDBC is 1/3000 times as the one of the extinction spectrum. The enhanced factor is about 75. The resonant wavelength of the metallic hole array can be tuned in a large wavelength regime, and the chirality of a series of molecular J-aggregates with different resonant wavelengths can be enhanced. Our structure provides a new method to amplify the chirality of molecular J-aggregates in experiments.
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Received: 19 May 2020
Revised: 13 July 2020
Accepted manuscript online: 28 July 2020
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PACS:
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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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87.64.Nj
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Fund: Project supported by the Fundamental Research Funds for the Central Universities and the National Key R&D Program of China (Grant No. 2016YFA0301300). |
Corresponding Authors:
Gang Song
E-mail: sg2010@bupt.edu.cn
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Cite this article:
Tiantian He(何田田), Qihui Ye(叶起惠), Gang Song(宋钢) Enhanced circular dichroism of TDBC in a metallic hole array structure 2020 Chin. Phys. B 29 097306
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[1] |
Webb R L 1996 J. Med. Chem. 39 5285
|
[2] |
Govorov A O, Fan Z Y, Hernandez P, Slocik J M and Naik R R 2010 Nano Lett. 10 1374
|
[3] |
Bruchez M P, Moronne M M, Gin P, Weiss S and Alivisatos A P 1998 Science 281 2013
|
[4] |
Chan W C and Nie S 1998 Science 281 2016
|
[5] |
Prodan E 2003 Science 302 419
|
[6] |
Crookes-Goodson W J, Slocik J M and Naik R R 2008 Chem. Soc. Rev. 37 2403
|
[7] |
Tang Y and Ouyang M 2007 Nat. Mater. 6 754
|
[8] |
Scholl J A, Koh A L and Dionne J A 2012 Nature 483 421
|
[9] |
Zhao Y, Xu L G, Ma W, Wang L B, Kuang H, Xu C L and Kotov N A 2014 Nano Lett. 14 3908
|
[10] |
Qiang B, Dubrovkin A M, Krishnamoorthy H N S, Wang Q, Soci C, Zhang Y, Teng J H and Wang Q J 2019 Adv. Photon. 1 026001
|
[11] |
Dai X Y, Yang Y and Zhang G H 2020 Chin. Phys. B 29 057302
|
[12] |
Lu H, Xiao F J, Zhao J L, Zhang H M and Shang W Y 2018 Chin. Phys. B 27 117301
|
[13] |
Jiang W, Xu Y H, Zhang S P, Xu H X, Chen W and Hu H T 2018 Chin. Phys. B 27 107403
|
[14] |
Chervy T, Azzini S, Lorchat E, Wang S J, Gorodetski Y, Hutchison J A, Berciaud S, Ebbesen T W and Genet C 2018 ACS Photon. 5 1281
|
[15] |
Alizadeh M H and Reinhard B M 2015 ACS Photon. 2 1780
|
[16] |
Jiang Q B, Pham A, Berthel M, Huant S, Bellessa J, Genet C and Drezet A 2016 ACS Photon. 3 1116
|
[17] |
Lan X and Wang Q B 2016 Adv. Mater. 28 10499
|
[18] |
Caridad J M, Winters S, McCloskey D, Duesberg G S, Donegan J F and Krstić V 2018 Nanotechnology 29 325204
|
[19] |
Song G, Guo J Q, Duan G Y, Jiao R Z and Yu L 2020 Nanotechnology 31 345202
|
[20] |
Ruan Z C and Qiu M 2006 Phys. Rev. Lett. 96 233901
|
[21] |
Song G, Li Y, Wu C,Duan G Y, Wang L L and Xiao J H 2013 Plasmonics 8 943
|
[22] |
Song G, Yu L, Duan G Y and Wang L L 2017 J. Phys. D: Appl. Phys. 50 205104
|
[23] |
Zou Y F, Song G, Jiao R Z, Duan G Y and Yu L 2019 Nanoscale Res. Lett. 14 74
|
[24] |
Aneta P, Maciej C, Justyna G, Dorota K, Marcin N, Sebastian M and Dawid P 2018 Nanoscale 10 12841
|
[25] |
Zhang D G, Xiang Y F, Chen J X, Cheng J J, Zhu L F, Wang R X, Zou G, Wang P, Ming H and Rosenfeld M 2018 Nano Lett. 18 1152
|
[26] |
Kravets V G, Kabashin A V, Barnes W L and Grigorenko A N 2018 Chem. Rev. 118 5912
|
[27] |
Wu Z H and Zhao T 2020 Chin. Phys. B 29 034101
|
[28] |
Min C J, Zhang Y Q, Yang J J, Guo C L, Yuan X C, Wang Y L and Zhao B 2020 Chin. Phys. B 29 027302
|
[29] |
Pang K W, Song G,Yu L and Li H H 2019 Chin. Phys. B 28 127301
|
[30] |
Xiao Y C, Lu W, Yi H, Shi C, Jing X X, Li Z, Long H and Zeng X K 2019 Chin. Phys. B 28 094215
|
[31] |
Guo Y H, Pu M B, Zhao Z Y, Wang Y Q, Jin J J, Gao P, Li X, Ma X L and Luo X G 2016 ACS Photon. 3 2022
|
[32] |
Zhang F, Pu M B, Li X, Gao P, Ma X L, Luo J, Yu H L and Luo X G 2017 Adv. Funct. Mater. 27 1704295
|
[33] |
Nemati A, Wang Q, Hong M H and Teng J H 2018 Opto-Electron. Adv. 01 180009
|
[34] |
Mao L B,Liu K, Zhang S and Cao T 2020 ACS Photon. 7 375
|
[35] |
Palik E D 1998 Handbook of optical constants of solids, Vol. 3 (Academic Press)
|
[36] |
Auguie B and Barnes W L 2008 Phys. Rev. Lett. 101 143902
|
[37] |
Born M 1999 Principles of optics – electromagnetic theory of propagation, interference and diffraction of light, 7th edn. (DBLP)
|
[38] |
Shen Y and Wang G P 2008 Opt. Express 16 8421
|
[39] |
Maier S A 2007 Plasmonics: Fundamentals and Applications, Vol. 2 (Spring Press)
|
[40] |
Wood R W 1902 Proc. Phys. Soc. London 18 269
|
[41] |
Zhang S, Genov D A, Wang Y, Liu M and Zhang X 2008 Phys. Rev. Lett. 101 047401
|
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