Photonic Sensors, Volume. 14, Issue 3, 240311(2024)
Visible Light-Illuminated Gold Nanohole Arrays With Tunable On-Chip Plasmonic Sensing Properties
[1] [1] P. Christopher, H. Xin, A. Marimuthu, and S. Linic,“Singular characteristics and unique chemical bond activation mechanisms of photocatalytic reactions on plasmonic nanostructures,” Nature Materials, 2012,11(12): 1044–1050.
[2] [2] X. Li, W. C. H. Choy, L. Huo, F. Xie, W. E. I. Sha,B. Ding, et al., “Dual plasmonic nanostructures for high performance inverted organic solar cells,”Advanced Materials, 2012, 24(22): 3046–3052.
[3] [3] J. Butet, P. F. Brevet, and O. J. F. Martin, “Optical second harmonic generation in plasmonic nanostructures: from fundamental principles to advanced applications,” ACS Nano, 2015, 9(11):10545–10562.
[4] [4] Y. Zhao, A. N. Askarpour, L. Sun, J. Shi, X. Li, and A. Alù, “Chirality detection of enantiomers using twisted optical metamaterials,” Nature Communications, 2017, 8(1): 14180.
[5] [5] A. M. Shrivastav, U. Cvelbar, and I. Abdulhalim,“A comprehensive review on plasmonic-based biosensors used in viral diagnostics,”Communications Biology, 2021, 4(1): 70.
[6] [6] J. Zeng, Y. Zhang, T. Zeng, R. Aleisa, Z. Qiu, Y.Chen, et al., “Anisotropic plasmonic nanostructures for colorimetric sensing,” Nano Today, 2020, 32:100855.
[7] [7] H. Gleiter, “Nanostructured materials: basic concepts and microstructure,” Acta Materialia, 2000, 48(1):1–29.
[8] [8] C. Song, B. Yang, Y. Zhu, Y. Yang, and L. Wang,“Ultrasensitive sliver nanorods array SERS sensor for mercury ions,” Biosensors and Bioelectronics,2017, 87: 59–65.
[9] [9] G. A. Lopez, M. C. Estevez, M. Soler, and L. M.Lechuga, “Recent advances in nanoplasmonic biosensors: applications and lab-on-a-chip integration,” Nanophotonics, 2017, 6(1): 123–136.
[10] [10] D. Zopf, A. Pittner, A. Dathe, N. Grosse, A. Csáki,K. Arstila, et al., “Plasmonic nanosensor array for multiplexed DNA-based pathogen detection,” ACS Sensors, 2019, 4(2): 335–343.
[11] [11] Y. Zhang, L. Lu, and X. Li, “Detection technologies for RNA modifications,” Experimental & Molecular Medicine, 2022, 54(10): 1601–1616.
[12] [12] T. Xie, Z. Cao, Y. Li, Z. Li, F. L. Zhang, Y. Gu, et al.,“Highly sensitive SERS substrates with multi-hot spots for on-site detection of pesticide residues,”Food Chemistry, 2022, 381: 132208.
[13] [13] C. Li and Y. Jin, “Shell-isolated plasmonic nanostructures for biosensing, catalysis, and advanced nanoelectronics,” Advanced Functional Materials, 2021, 31(7): 2008031.
[14] [14] S. Su, T. Yu, J. Hu, and Y. Xianyu, “A bio-inspired plasmonic nanosensor for angiotensin-converting enzyme through peptide-mediated assembly of gold nanoparticles,” Biosensors and Bioelectronics, 2022,195: 113621.
[15] [15] X. Liu, W. Liu, and B. Yang, “Deep-ellipticalsilver-nanowell arrays (d-EAgNWAs) fabricated by stretchable imprinting combining colloidal lithography: a highly sensitive plasmonic sensing platform,” Nano Research, 2019, 12(4): 845–853.
[16] [16] R. F. Balderas-Valadez and C. Pacholski, “Plasmonic nanohole arrays on top of porous silicon sensors: a win-win situation,” ACS Applied Materials & Interfaces, 2021, 13(30): 36436–36444.
[17] [17] I. Misbah, F. Zhao, and W. C. Shih, “Symmetry breaking-induced plasmonic mode splitting in coupled gold-silver alloy nanodisk array for ultrasensitive RGB colorimetric biosensing,” ACS Applied Materials & Interfaces, 2019, 11(2):2273–2281.
[18] [18] I. O. Oguntoye, B. K. Simone, S. Padmanabha, G. Z.Hartfield, P. Amrollahi, T. Y. Hu, et al., “Silicon nanodisk Huygens metasurfaces for portable and low-cost refractive index and biomarker sensing,”ACS Applied Nano Materials, 2022, 5(3):3983–3991.
[19] [19] S. Mehla, P. R. Selvakannan, and S. K. Bhargava,“Readily tunable surface plasmon resonances in gold nanoring arrays fabricated using lateral electrodeposition,” Nanoscale, 2022, 14(28):9989–9996.
[20] [20] H. Cheng, X. Dong, Y. Yang, Y. Feng, T. Wang,M. A. Tahir, et al., “Au nanoring arrays as surface enhanced Raman spectroscopy substrate for chemical component study of individual atmospheric aerosol particle,” Journal of Environmental Sciences, 2021, 100: 11–17.
[21] [21] B. Zhou, X. Xiao, T. Liu, Y. Gao, Y. Huang, and W. Wen, “Real-time concentration monitoring in microfluidic system via plasmonic nanocrescent arrays,” Biosensors and Bioelectronics, 2016, 77:385–392.
[22] [22] M. C. Giordano, A. Foti, E. Messina, P. G. Gucciardi,D. Comoretto, and F. Buatier de Mongeot, “SERS amplification from self-organized arrays of plasmonic nanocrescents,” ACS Applied Materials & Interfaces, 2016, 8(10): 6629–6638.
[23] [23] Y. Liu, S. H. Wu, X. Y. Du, and J. J. Sun, “Plasmonic Ag nanocube enhanced SERS biosensor for sensitive detection of oral cancer DNA based on nicking endonuclease signal amplification and heated electrode,” Sensors and Actuators B: Chemical,2021, 338: 129854.
[24] [24] B. Ai, L. Wang, H. Mohwald, Y. Yu, and G. Zhang,“Asymmetric half-cone/nanohole array films with structural and directional reshaping of extraordinary optical transmission,” Nanoscale, 2014, 6(15):8997–9005.
[25] [25] T. W. Ebbesen, H. J. Lezec, H. F. Ghaemi, T. Thio,and P. A. Wolff, “Extraordinary optical transmission through sub-wavelength hole arrays,” Nature, 1998,391(6668): 667–669.
[26] [26] T. Rindzevicius, Y. Alaverdyan, B. Sepulveda, T.Pakizeh, M. K?ll, R. Hillenbrand, et al., “Nanohole plasmons in optically thin gold films,” The Journal of Physical Chemistry C, 2007, 111(3): 1207–1212.
[27] [27] M. P. Murray-Méthot, M. Ratel, and J. F. Masson,“Optical properties of Au, Ag, and bimetallic Au on Ag nanohole arrays,” The Journal of Physical Chemistry C, 2010, 114(18): 8268–8275.
[28] [28] J. H. Kang, J. H. Choe, D. S. Kim, and Q. H. Park,“Substrate effect on aperture resonances in a thin metal film,” Optics Express, 2009, 17(18):15652–15658.
[29] [29] B. Du, Y. Ruan, T. T. Ly, P. Jia, Q. Sun, Q. Feng,et al., “MoS2-enhanced epoxy-based plasmonic fiber-optic sensor for selective and sensitive detection of methanol,” Sensors and Actuators B: Chemical, 2020, 305: 127513.
[30] [30] C. Song, X. Jiang, Y. Yang, J. Zhang, S. Larson, Y.Zhao, et al., “High-sensitive assay of nucleic acid using tetrahedral DNA probes and DNA concatamers with a surface-enhanced Raman scattering/surface plasmon resonance dual-mode biosensor based on a silver nanorod-covered silver nanohole array,” ACS Applied Materials & Interfaces, 2020, 12(28):31242–31254.
[31] [31] B. Ai, P. Basnet, S. Larson, W. Ingram, and Y. Zhao,“Plasmonic sensor with high figure of merit based on differential polarization spectra of elliptical nanohole array,” Nanoscale, 2017, 9(38):14710–14721.
[32] [32] X. Luo, Y. Xing, D. D. Galvan, E. Zheng, P. Wu,C. Cai, et al., “Plasmonic gold nanohole array for surface-enhanced Raman scattering detection of DNA methylation,” ACS Sensors, 2019, 4(6):1534–1542.
[33] [33] V. Garg, R. G. Mote, and J. Fu, “Focused ion beam direct fabrication of subwavelength nanostructures on silicon for multicolor generation,” Advanced Materials Technologies, 2018, 3(8): 1800100.
[34] [34] H. W. Deckman and J. H. Dunsmuir, “Natural lithography,” Applied Physics Letters, 1982, 41(4):377–379.
[35] [35] Y. Wang, H. B. Chong, Z. Zhang, and Y. Zhao,“Large-area fabrication of complex nanohole arrays with highly tunable plasmonic properties,” ACS Applied Materials & Interfaces, 2020, 12(33):37435–37443.
[36] [36] I. G. Balasa, T. Cesca, B. Kalinic, D. Piccotti, C.Scian, and G. Mattei, “Double-Langmuir model for optimized nanohole array-based plasmonic biosensors,” Applied Surface Science, 2021, 556:149802.
[37] [37] C. W. Moon, G. Kim, and J. K. Hyun, “Enhancing the plasmonic component of photonic-plasmonic resonances in self-assembled dielectric spheres on Ag,” Journal of Materials Chemistry C, 2021, 9(5):1764–1771.
[38] [38] X. Fang, C. Zheng, Z. Yin, Z. Wang, J. Wang, J. Liu,et al., “Hierarchically ordered silicon metastructures from improved self-assembly-based nanosphere lithography,” ACS Applied Materials & Interfaces,2020, 12(10): 12345–12352.
[39] [39] Y. C. Lu and C. H. Hsueh, “Fabrication of periodic Ag tetrahedral nanopyramids via H2O2-assisted nanosphere lithography for plasmonic applications,”Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2021, 628: 127278.
[40] [40] H. Zheng, Y. Zhou, C. F. Ugwu, A. Du, I. I.Kravchenko, and J. G. Valentine, “Large-scale metasurfaces based on grayscale nanosphere lithography,” ACS Photonics, 2021, 8(6):1824–1831.
[41] [41] J. Guang, M. Lu, Y. Liu, R. Fan, C. Wang, R. Li,et al., “Flexible and speedy preparation of large-scale polystyrene monolayer through hemispherical-depression-assisted self-assembling and vertical lifting,” ACS Applied Polymer Materials,2023, 5(4): 2674–2683.
[42] [42] R. M. Pasternack, S. Rivillon Amy, and Y. J. Chabal,“Attachment of 3-(aminopropyl)triethoxysilane on silicon oxide surfaces: dependence on solution temperature,” Langmuir, 2008, 24(22):12963–12971.
[43] [43] F. Hernáinz and A. Caro, “Variation of surface tension in aqueous solutions of sodium dodecyl sulfate in the flotation bath,” Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2002,196(1): 19–24.
[44] [44] R. L. Hoffman, “A study of the advancing interface.I. Interface shape in liquid-gas systems,” Journal of Colloid and Interface Science, 1975, 50(2):228–241.
[45] [45] P. B. Johnson and R. W. Christy, “Optical constants of the noble metals,” Physical Review B, 1972, 6(12):4370–4379.
[46] [46] J. Henson, E. Dimakis, J. DiMaria, R. Li, S.Minissale, L. Dal Negro, et al., “Enhanced near-green light emission from InGaN quantum wells by use of tunable plasmonic resonances in silver nanoparticle arrays,” Optics Express, 2010,18(20): 21322–21329.
[47] [47] T. Ohno, C. Wadell, S. Inagaki, J. Shi, Y. Nakamura,S. Matsushita, et al., “Hole-size tuning and sensing performance of hexagonal plasmonic nanohole arrays,” Optical Materials Express, 2016, 6(5):1594–1603.
[48] [48] C. Valsecchi, L. E. Gomez Armas, and J. Weber de Menezes, “Large area nanohole arrays for sensing fabricated by interference lithography,” Sensors(Basel), 2019, 19(9): 2182.
[49] [49] H. Kurt, P. Pishva, Z. S. Pehlivan, E. G. Arsoy,Q. Saleem, M. K. Bayaz?t, et al., “Nanoplasmonic biosensors: theory, structure, design, and review of recent applications,” Analytica Chimica Acta, 2021,1185: 338842.
[50] [50] F. Xu, J. Ma, K. Hu, Z. Zhang, C. Ma, B. O. Guan,et al., “Ultrahigh sensitivity of hydrogen detection with a perforated Pd film on a miniature fiber tip,”Sensors and Actuators B: Chemical, 2024, 400:134875.
[51] [51] B. Du, Y. Ruan, D. Yang, P. Jia, S. Gao, Y. Wang,et al., “Freestanding metal nanohole array for high-performance applications,” Photonics Research,2020, 8(11): 1749–1756.
[52] [52] S. Nair, C. Escobedo, and R. G. Sabat, “Crossed surface relief gratings as nanoplasmonic biosensors,”ACS Sensors, 2017, 2(3): 379–385.
[53] [53] Z. Zhang, F. Zhao, R. Gao, C. Y. Jao, C. Ma,J. Li, et al., “Rayleigh anomaly-enabled mode hybridization in gold nanohole arrays by scalable colloidal lithography for highly-sensitive biosensing,” Nanophotonics, 2022, 11(3): 507–517.
[54] [54] Y. Liang, Z. Yu, L. Li, and T. Xu, “A self-assembled plasmonic optical fiber nanoprobe for label-free biosensing,” Scientific Reports, 2019, 9(1): 7379.
Get Citation
Copy Citation Text
Jianye GUANG, Mengdi LU, Rui LI, Chen WANG, Ming LIN, Ruizhi FAN, Wei PENG. Visible Light-Illuminated Gold Nanohole Arrays With Tunable On-Chip Plasmonic Sensing Properties[J]. Photonic Sensors, 2024, 14(3): 240311
Category: Regular
Received: Aug. 23, 2023
Accepted: Jan. 4, 2024
Published Online: Aug. 16, 2024
The Author Email: LU Mengdi (mdlu@dlut.edu.cn)