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技术视频
Xueling Cheng, et al. “UV fluorescence enhancement by aluminum and magnesium equilateral bowtie nanoantennas.” OSA Continuum. Vol. 3, (2020) P. 3300-3313
01
2020
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Mikhail Baibakov, et al. Zero-mode waveguides can be made better: fluorescence enhancement with rectangular aluminum nanoapertures from the visible to the deep ultraviolet. Nanoscale Adv. 2020,2, 4153-4160
07
Aleksandr Barulin, Jérôme Wenger. Ultraviolet Photostability Improvement for Autofluorescence Correlation Spectroscopy on Label-Free Proteins. J Phys Chem Lett. 2020 Mar 19;11(6):2027-2035.
03
Satyajit Patra, et al. Surface passivation of zero-mode waveguide nanostructures: benchmarking protocols and fluorescent labels. Scientific Reports volume 10, Article number: 5235 (2020).
Aleksandr Barulin, et al. Deep Ultraviolet Plasmonic Enhancement of Single Protein Autofluorescence in Zero-Mode Waveguides. Nano Lett. 2019 Oct 9;19(10):7434-7442.
2019
10
Yael Gutiérrez, et al. Plasmonics in the Ultraviolet with Aluminum, Gallium, Magnesium and Rhodium. Appl. Sci. 2018, 8(1), 64
2018
Yannan Bian, Xiangyi Huang and Jicun Ren. Sensitive and homogenous immunoassay of fumonisin in foods using single molecule fluorescence correlation spectroscopy. Anal. Methods, 2016,8, 1333-1338
2016
Jiao Xiaojin. PLASMONIC ENHANCEMENT OF ULTRAVIOLET FLUORESCENCE. Doctor of Philosophy, University of Utah
2015
05
Nuriye Akbay, Joseph R. Lakowicz, and Krishanu Ray. Distance-Dependent Metal-Enhanced Intrinsic Fluorescence of Proteins Using Polyelectrolyte Layer-by-Layer Assembly and Aluminum Nanoparticles. J. Phys. Chem. C 2012, 116, 19, 10766–10773.
2014
04
Sanz, JM, et al. UV plasmonic behavior of various metal nanoparticles in the near- and far-field regimes: Geometry and substrate effects. The Journal of Physical Chemistry C .117 / 38, (2013) 19606 - 19615
2013
09
Xiaojin Jiao, Steve Blair. Optical antenna design for fluorescence enhancement in the ultraviolet. Opt Express. 2012 Dec 31;20(28):29909-22.
2012
12