[1] Zhou, X. L. et al. Surface plasmon resonance microscopy: from single-molecule sensing to single-cell imaging. Angewandte Chemie International Edition 59, 1776-1785 (2020).
[2] Homola, J., Yee, S. S. & Gauglitz, G. Surface plasmon resonance sensors: review. Sensors and Actuators B: Chemical 54, 3-15 (1999). doi: 10.1007/springerreference_67738
[3] Zayats, A. V., Smolyaninov, I. I. & Maradudin, A. A. Nano-optics of surface plasmon polaritons. Physics Reports 408, 131-314 (2005). doi: 10.1016/j.physrep.2004.11.001
[4] Yeatman, E. & Ash, E. A. Surface plasmon microscopy. Electronics Letters 23, 1091-1092 (1987). doi: 10.1007/978-3-540-69565-3_14
[5] Zeng, Q. et al. Dynamic single-molecule sensing by actively tuning binding kinetics for ultrasensitive biomarker detection. Proceedings of the National Academy of Sciences of the United States of America 119, e2120379119 (2022). doi: 10.1073/pnas.2120379119
[6] Khochare, S. D. et al. Functional plasmonic microscope: characterizing the metabolic activity of single cells via sub-nm membrane fluctuations. Analytical Chemistry 96, 5771-5780 (2024). doi: 10.1021/acs.analchem.3c04301
[7] Zhai, C. H. et al. Precise identification and profiling of surface proteins of ultra rare tumor specific extracellular vesicle with dynamic quantitative plasmonic imaging. ACS Nano 17, 16656-16667 (2023). doi: 10.1021/acsnano.3c02853
[8] Zhang, P. F. et al. Plasmonic scattering imaging of single proteins and binding kinetics. Nature Methods 17, 1010-1017 (2020). doi: 10.1038/s41592-020-0947-0
[9] Wu, G. et al. Dynamic imaging of interfacial electrochemistry on single Ag nanowires by azimuth-modulated plasmonic scattering interferometry. Nature Communications 14, 4194 (2023). doi: 10.1038/s41467-023-39866-8
[10] Fang, Y. M. et al. Intermittent photocatalytic activity of single CdS nanoparticles. Proceedings of the National Academy of Sciences of the United States of America 114, 10566-10571 (2017).
[11] Liu, Z. W. et al. Flexible hyperspectral surface plasmon resonance microscopy. Nature Communications 13, 6475 (2022). doi: 10.1038/s41467-022-34196-7
[12] Kuai, Y. et al. Label-free surface-sensitive photonic microscopy with high spatial resolution using azimuthal rotation illumination. Science Advances 5, eaav5335 (2019). doi: 10.1126/sciadv.aav5335
[13] Liu, Y. et al. Wide-field optical sizing of single nanoparticles with 10 nm accuracy. Science China Physics, Mechanics & Astronomy 64, 294213 (2021).
[14] Mandracchia, B. et al. Surface plasmon resonance imaging by holographic enhanced mapping. Analytical Chemistry 87, 4124-4128 (2015). doi: 10.1021/acs.analchem.5b00095
[15] Huang, B., Yu, F. & Zare, R. N. Surface plasmon resonance imaging using a high numerical aperture microscope objective. Analytical Chemistry 79, 2979-2983 (2007). doi: 10.1021/ac062284x
[16] Zeng, Y. J. et al. Wavelength-scanning surface plasmon resonance microscopy: a novel tool for real time sensing of cell-substrate interactions. Biosensors and Bioelectronics 145, 111717 (2019). doi: 10.1016/j.bios.2019.111717
[17] Huang, Y. H. et al. Detecting phase shifts in surface plasmon resonance: a review. Advances in Optical Technologies 2012, e471957 (2012).
[18] Wu, S. Y. et al. Highly sensitive differential phase-sensitive surface plasmon resonance biosensor based on the mach–zehnder configuration. Optics Letters 29, 2378-2380 (2004). doi: 10.1364/OL.29.002378
[19] Huang, Y. H. et al. Phase sensitive SPR sensor for wide dynamic range detection. Optics Letters 36, 4092-4094 (2011). doi: 10.1364/OL.36.004092
[20] Shao, Y. H. et al. Wavelength-multiplexing phase-sensitive surface plasmon imaging sensor. Optics Letters 38, 1370-1372 (2013). doi: 10.1364/OL.38.001370
[21] Hu, C. Y., Zhong, J. G. & Weng, J. W. Digital holographic microscopy by use of surface plasmon resonance for imaging of cell membranes. Journal of Biomedical Optics 15, 056015 (2010). doi: 10.1117/1.3497564
[22] Zhang, J. W. et al. Azimuthal scanning excitation surface plasmon resonance holographic microscopy. Laser & Photonics Reviews 18, 2301013 (2024). doi: 10.1002/lpor.202301013
[23] Dai, S. Q. et al. Dual-wavelength surface plasmon resonance holographic microscopy for simultaneous measurements of cell-substrate distance and cytoplasm refractive index. Optics Letters 47, 2306-2309 (2022). doi: 10.1364/OL.449400
[24] Mi, J. Y. et al. Thickness measurement of bimetallic film using surface plasmon resonance holographic microscopy. Optics Express 31, 39415-39423 (2023). doi: 10.1364/OE.503777
[25] Kim, M. K. Phase microscopy and surface profilometry by digital holography. Light: Advanced Manufacturing 3, 481-492 (2022). doi: 10.37188/lam.2022.019
[26] Li, S. P. & Zhong, J. G. Simultaneous amplitude-contrast and phase-contrast surface plasmon resonance imaging by use of digital holography. Biomedical Optics Express 3, 3190-3202 (2012). doi: 10.1364/BOE.3.003190
[27] Zhang, J. W. et al. A review of common-path off-axis digital holography: towards high stable optical instrument manufacturing. Light: Advanced Manufacturing 2, 333-349 (2021). doi: 10.37188/lam.2021.023
[28] Zhang, J. W. et al. Compact surface plasmon holographic microscopy for near-field film mapping. Optics Letters 42, 3462-3465 (2017). doi: 10.1364/OL.42.003462
[29] Dai, S. Q. et al. Real-time and wide-field mapping of cell-substrate adhesion gap and its evolution via surface plasmon resonance holographic microscopy. Biosensors and Bioelectronics 174, 112826 (2021). doi: 10.1016/j.bios.2020.112826
[30] Dai, S. Q. et al. Optical tweezers integrated surface plasmon resonance holographic microscopy for characterizing cell-substrate interactions under noninvasive optical force stimuli. Biosensors and Bioelectronics 206, 114131 (2022). doi: 10.1016/j.bios.2022.114131
[31] Dai, S. Q. et al. Label-free and dynamic monitoring of cell evolutions using wavelength-multiplexing surface plasmon resonance holographic microscopy. Biomedical Optics Express 14, 2028-2039 (2023). doi: 10.1364/BOE.486467
[32] Haynes, W. M. CRC Handbook of Chemistry and Physics. 97th edn. (Boca Raton: CRC Press, 2016).
[33] Polyanskiy, M. N. Refractiveindex. info database of optical constants. Scientific Data 11, 94 (2024).
[34] Bruna, M. & Borini, S. Optical constants of graphene layers in the visible range. Applied Physics Letters 94, 031901 (2009). doi: 10.1063/1.3073717
[35] Nguyen, H. et al. Surface plasmon resonance: a versatile technique for biosensor applications. Sensors 15, 10481-10510 (2015). doi: 10.3390/s150510481
[36] Balbinot, S. et al. Plasmonic biosensors for food control. Trends in Food Science & Technology 111, 128-140 (2021). doi: 10.1016/j.jpgs.2021.02.057
[37] Estelmann, A. et al. An SPR-based in situ methane sensor for the aqueous and gas phase. Analytical Chemistry 96, 16203-16214 (2024). doi: 10.1021/acs.analchem.4c02875
[38] Zeng, Y. J. et al. A speckle-free angular interrogation SPR imaging sensor based on galvanometer scan and laser excitation. Plasmonics 14, 1497-1504 (2019). doi: 10.1007/s11468-019-00938-5
[39] Yuk, J. S. et al. Characterization of surface plasmon resonance wavelength by changes of protein concentration on protein chips. Sensors and Actuators B: Chemical 94, 161-164 (2003). doi: 10.1016/S0925-4005(03)00345-9
[40] Rifat, A. A. et al. Highly sensitive multi-core flat fiber surface plasmon resonance refractive index sensor. Optics Express 24, 2485 (2016). doi: 10.1364/OE.24.002485
[41] Alsharari, M. et al. Enhanced sensing efficiency of ultra-narrow band graphene-based surface plasmon resonance refractive index sensor for biochemical applications and environmental monitoring. Plasmonics 20, 1273-1284 (2024). doi: 10.1007/s11468-024-02372-8
[42] Majidi, Z., Ghanavati, M. & Karami, M. A. Multi-resonance plasmonic refractive index sensor based on maze-shaped resonators for biological applications. Journal of Optics 26, 095002 (2024). doi: 10.1088/2040-8986/ad657b
[43] Tan, C. L. et al. Recent advances in ultrathin two-dimensional nanomaterials. Chemical Reviews 117, 6225-6331 (2017). doi: 10.1021/acs.chemrev.6b00558
[44] Wilson, N. P. et al. Interlayer electronic coupling on demand in a 2D magnetic semiconductor. Nature Materials 20, 1657-1662 (2021). doi: 10.1038/s41563-021-01070-8
[45] Yi, Y. et al. Recent advances in quantum effects of 2D materials. Advanced Quantum Technologies 2, 1800111 (2019). doi: 10.1002/qute.201800111
[46] Lee, C. et al. Measurement of the elastic properties and intrinsic strength of monolayer graphene. Science 321, 385-388 (2008). doi: 10.1126/science.1157996
[47] Hui, F. et al. Emerging scanning probe–based setups for advanced nanoelectronic research. Advanced Functional Materials 30, 1902776 (2020). doi: 10.1002/adfm.201902776
[48] Wu, J. X. & Xie, L. M. Structural quantification for graphene and related two-dimensional materials by Raman spectroscopy. Analytical Chemistry 91, 468-481 (2019). doi: 10.1021/acs.analchem.8b04991
[49] Yoo, S. & Park, Q. H. Spectroscopic ellipsometry for low-dimensional materials and heterostructures. Nanophotonics 11, 2811-2825 (2022). doi: 10.1515/nanoph-2022-0039