Crossref
journal-article
Springer Science and Business Media LLC
Nature Photonics (297)
References
91
Referenced
322
-
Gramotnev, D. K. & Bozhevolnyi, S. I. Plasmonics beyond the diffraction limit. Nature Photon. 4, 83–91 (2010).
(
10.1038/nphoton.2009.282
) / Nature Photon. by DK Gramotnev (2010) -
Schuller, J. A. et al. Plasmonics for extreme light concentration and manipulation. Nature Mater. 9, 193–204 (2010).
(
10.1038/nmat2630
) / Nature Mater. by JA Schuller (2010) -
Han, Z. & Bozhevolnyi, S. I. Radiation guiding with surface plasmon polaritons. Rep. Prog. Phys. 76, 016402 (2013).
(
10.1088/0034-4885/76/1/016402
) / Rep. Prog. Phys. by Z Han (2013) -
Sorger, V. J., Oulton, R. F., Ma, R.-M. & Zhang, X. Toward integrated plasmonic circuits. MRS Bulletin 37, 728–738 (2012).
(
10.1557/mrs.2012.170
) / MRS Bulletin by VJ Sorger (2012) -
Feng, J. et al. Nanoscale plasmonic interferometers for multispectral, high-throughput biochemical sensing. Nano Lett. 12, 602–609 (2012).
(
10.1021/nl203325s
) / Nano Lett. by J Feng (2012) -
Dmitriev, A. (ed.) Nanoplasmonic Sensors (Springer, 2012).
(
10.1007/978-1-4614-3933-2
) / Nanoplasmonic Sensors by A Dmitriev (2012) -
Chung, T., Lee, S.-Y., Song, E. Y., Chun, H. & Lee, B. Plasmonic nanostructures for nano-scale bio-sensing. Sensors 11, 10907–10929 (2011).
(
10.3390/s111110907
) / Sensors by T Chung (2011) -
Juan, M. L., Righini, M. & Quidant, R. Plasmon nano-optical tweezers. Nature Photon. 5, 349–356 (2011).
(
10.1038/nphoton.2011.56
) / Nature Photon. by ML Juan (2011) -
Roxworthy, B. J. & Toussaint, K. C. Jr. Femtosecond-pulsed plasmonic nanotweezers. Sci. Rep. 2, 660 (2012).
(
10.1038/srep00660
) / Sci. Rep. by BJ Roxworthy (2012) -
Novotny, L., Bian, R. X. & Xie, X. S. Theory of nanometric optical tweezers. Phys. Rev. Lett. 79, 645–648 (1997).
(
10.1103/PhysRevLett.79.645
) / Phys. Rev. Lett. by L Novotny (1997) -
Gramotnev, D. K. & Vogel, M. W. Ultimate capabilities of sharp metal tips for plasmon nanofocusing, near-field trapping and sensing. Phys. Lett. A 375, 3464–3468 (2011).
(
10.1016/j.physleta.2011.07.053
) / Phys. Lett. A by DK Gramotnev (2011) -
Novotny, L. & van Hulst, N. Antennas for light. Nature Photon. 5, 83–90 (2011).
(
10.1038/nphoton.2010.237
) / Nature Photon. by L Novotny (2011) -
Zayats, A. V., Smolyaninov, I. I. & Maradudin, A. A. Nano-optics of surface plasmon polaritons. Phys. Rep. 408, 131–314 (2005).
(
10.1016/j.physrep.2004.11.001
) / Phys. Rep. by AV Zayats (2005) -
Verma, P., Ichimura, T., Yano, T., Saito, Y. & Kawata, S. Nano-imaging through tip-enhanced Raman spectroscopy: stepping beyond the classical limits. Las. Photon. Rev. 4, 548–561 (2010).
(
10.1002/lpor.200910039
) / Las. Photon. Rev. by P Verma (2010) -
Nerkararyan, K. V. Superfocusing of a surface polariton in a wedge-like structure. Phys. Lett. A 237, 103–105 (1997).
(
10.1016/S0375-9601(97)00722-6
) / Phys. Lett. A by KV Nerkararyan (1997) -
Babadjanyan, A. J., Margaryan, N. L. & Nerkararyan, K. V. Superfocusing of surface polaritons in the conical structure. J. Appl. Phys. 87, 3785–3788 (2000).
(
10.1063/1.372414
) / J. Appl. Phys. by AJ Babadjanyan (2000) -
Stockman, M. I. Nanofocusing of optical energy in tapered plasmonic waveguides. Phys. Rev. Lett. 93, 137404 (2004).
(
10.1103/PhysRevLett.93.137404
) / Phys. Rev. Lett. by MI Stockman (2004) -
Gramotnev, D. K. Adiabatic nanofocusing of plasmons by sharp metallic grooves: geometrical optics approach. J. Appl. Phys. 98, 104302 (2005).
(
10.1063/1.2130520
) / J. Appl. Phys. by DK Gramotnev (2005) -
Issa, N. A. & Guckenberger, R. Optical nanofocusing on tapered metallic waveguides. Plasmonics 2, 31–37 (2007).
(
10.1007/s11468-006-9022-7
) / Plasmonics by NA Issa (2007) -
Gramotnev, D. K., Vogel, M. W. & Stockman, M. I. Optimized nonadiabatic nanofocusing of plasmons by tapered metal rods. J. Appl. Phys. 104, 034311 (2008).
(
10.1063/1.2963699
) / J. Appl. Phys. by DK Gramotnev (2008) -
Pile, D. F. P. & Gramotnev, D. K. Adiabatic and nonadiabatic nanofocusing of plasmons by tapered gap plasmon waveguides. Appl. Phys. Lett. 89, 041111 (2006).
(
10.1063/1.2236219
) / Appl. Phys. Lett. by DFP Pile (2006) -
Ginzburg, P., Arbel, D. & Orenstein, M. Gap plasmon polariton structure for very efficient microscale-to-nanoscale interfacing. Opt. Lett. 31, 3288–3290 (2006).
(
10.1364/OL.31.003288
) / Opt. Lett. by P Ginzburg (2006) - Conway, J. Efficient optical coupling to the nanoscale. 32–102 PhD thesis, Univ. California (2006). / Efficient optical coupling to the nanoscale by J Conway (2006)
-
Gramotnev, D. K., Pile, D. F. P., Vogel, M. W. & Zhang, X. Local electric field enhancement during nanofocusing of plasmons by a tapered gap. Phys. Rev. B 75, 035431 (2007).
(
10.1103/PhysRevB.75.035431
) / Phys. Rev. B by DK Gramotnev (2007) -
Vedantam, S. et al. A plasmonic dimple lens for nanoscale focusing of light. Nano Lett. 9, 3447–3452 (2009).
(
10.1021/nl9016368
) / Nano Lett. by S Vedantam (2009) -
Choo, H. et al. Nanofocusing in a metal–insulator–metal gap plasmon waveguide with a three-dimensional linear taper. Nature Photon. 6, 838–844 (2012).
(
10.1038/nphoton.2012.277
) / Nature Photon. by H Choo (2012) -
Desiatov, B., Goykhman, I. & Levy, U. Plasmonic nanofocusing of light in an integrated silicon photonics platform. Opt. Express 14, 13150–13157 (2011).
(
10.1364/OE.19.013150
) / Opt. Express by B Desiatov (2011) -
Gramotnev, D. K. & Vernon, K. C. Adiabatic nano-focusing of plasmons by sharp metallic wedges. Appl. Phys. B 86, 7–17 (2007).
(
10.1007/s00340-006-2387-7
) / Appl. Phys. B by DK Gramotnev (2007) -
Durach, M., Rusina, A., Stockman, M. I. & Nelson, K. Toward full spatiotemporal control on the nanoscale. Nano Lett. 7, 3145–3149 (2007).
(
10.1021/nl071718g
) / Nano Lett. by M Durach (2007) -
Vernon, K. C., Gramotnev, D. K. & Pile, D. F. P. Adiabatic nanofocusing of plasmons by a sharp metal wedge on a dielectric substrate. J. Appl. Phys. 101, 104312 (2007).
(
10.1063/1.2732699
) / J. Appl. Phys. by KC Vernon (2007) -
Verhagen, E., Polman, A. & Kuipers, L. K. Nanofocusing in laterally tapered plasmonic waveguides. Opt. Express 16, 45–57 (2008).
(
10.1364/OE.16.000045
) / Opt. Express by E Verhagen (2008) -
Verhagen, E., Spasenović, M., Polman, A. & Kuipers, L. K. Nanowire plasmon excitation by adiabatic mode transformation. Phys. Rev. Lett. 102, 203904 (2009).
(
10.1103/PhysRevLett.102.203904
) / Phys. Rev. Lett. by E Verhagen (2009) -
Mason, D. R., Gramotnev, D. K. & Kim, K. S. Plasmon nanofocusing in a dielectric hemisphere covered in tapered metal film, Opt. Express 20, 12866–12876 (2012).
(
10.1364/OE.20.012866
) / Opt. Express by DR Mason (2012) -
Volkov, V. S. et al. Nanofocusing with channel plasmon polaritons. Nano Lett. 9, 1278–1262 (2009).
(
10.1021/nl900268v
) / Nano Lett. by VS Volkov (2009) -
Liu, Z., Steele, J. M., Lee, H. & Zhang, X. Tuning the focus of a plasmonic lens by the incident angle. Appl. Phys. Lett. 88, 171108 (2006).
(
10.1063/1.2188378
) / Appl. Phys. Lett. by Z Liu (2006) -
Lerman, G. M., Yanai, A. & Levy, U. Demonstration of nanofocusing by the use of plasmonic lens illuminated with radially polarized light. Nano Lett. 9, 2139–2143 (2009).
(
10.1021/nl900694r
) / Nano Lett. by GM Lerman (2009) -
Davoyan, A. R., Shadrivov, I. V., Kivshar, Y. S. & Gramotnev, D. K. Optimal tapers for compensating losses in plasmonic waveguides. Physica Status Solidi RRL 4, 277–279 (2010).
(
10.1002/pssr.201004220
) / Physica Status Solidi RRL by AR Davoyan (2010) -
Khurgin, J. B. & Sun, G. Practicality of compensating the loss in the plasmonic waveguides using semiconductor gain medium. Appl. Phys. Lett. 100, 011105 (2012).
(
10.1063/1.3673849
) / Appl. Phys. Lett. by JB Khurgin (2012) -
Verhagen, E., Kuipers, L. K. & Polman, A. Plasmonic nanofocusing in a dielectric wedge. Nano Lett. 10, 3665–3669 (2010).
(
10.1021/nl102120p
) / Nano Lett. by E Verhagen (2010) -
Gramotnev, D. K., Tan, S. J. & Kurth, M. L. Plasmon nanofocusing with negative refraction in a high-refractive index dielectric wedge.
http://dx.doi.org/10.1007/s11468-013-9610-2
Plasmonics (2013).
(
10.1007/s11468-013-9610-2
) -
Aubry, A. et al. Plasmonic light-harvesting devices over the whole visible spectrum. Nano Lett. 10, 2574–2579 (2010).
(
10.1021/nl101235d
) / Nano Lett. by A Aubry (2010) -
Fernández-Domínguez, A. I., Maier, S. A. & Pendry, J. B. Collection and concentration of light by touching spheres: a transformation optics approach. Phys. Rev. Lett. 105, 266807 (2010).
(
10.1103/PhysRevLett.105.266807
) / Phys. Rev. Lett. by AI Fernández-Domínguez (2010) -
Nerkararyan, K. V., Nerkararyan, S. K. & Bozhevolnyi, S. I. Plasmonic black-hole: broadband omnidirectional absorber of gap surface plasmons. Opt. Lett. 36, 4311–4313 (2011).
(
10.1364/OL.36.004311
) / Opt. Lett. by KV Nerkararyan (2011) -
Nordlander, P., Oubre, C., Prodan, E., Li, K. & Stockman, M. I. Plasmon hybridization in nanoparticle dimers. Nano Lett. 4, 899–903 (2004).
(
10.1021/nl049681c
) / Nano Lett. by P Nordlander (2004) -
Fernández-Domínguez, A. I., Wiener, A., García-Vidal, F. J., Maier, S. A. & Pendry, J. B. Transformation-optics description of nonlocal effects in plasmonic nanostructures. Phys. Rev. Lett. 108, 106802 (2012).
(
10.1103/PhysRevLett.108.106802
) / Phys. Rev. Lett. by AI Fernández-Domínguez (2012) -
Wang, F. & Shen, Y. R. General properties of local plasmons in metal nanostructures. Phys. Rev. Lett. 97, 206806 (2006).
(
10.1103/PhysRevLett.97.206806
) / Phys. Rev. Lett. by F Wang (2006) -
Li, K., Stockman, M. I. & Bergman, D. J. Self-similar chain of metal nanospheres as an efficient nanolens. Phys. Rev. Lett. 91, 227402 (2003).
(
10.1103/PhysRevLett.91.227402
) / Phys. Rev. Lett. by K Li (2003) -
Vogel, M. W. & Gramotnev, D. K. Optimization of plasmon nano-focusing in tapered metal rods. J. Nanophoton. 2, 021852 (2008).
(
10.1117/1.3046689
) / J. Nanophoton. by MW Vogel (2008) -
Kurihara, K. et al. Superfocusing modes of surface plasmon polaritons in conical geometry based on the quasi-separation of variables approach. J. Phys. A 40, 12479 (2007).
(
10.1088/1751-8113/40/41/015
) / J. Phys. A by K Kurihara (2007) -
Kurihara, K., Yamamoto, K., Takahara, J. & Otomo, A. Superfocusing modes of surface plasmon polaritons in a wedge-shaped geometry obtained by quasi-separation of variables. J. Phys. A 41, 295401 (2008).
(
10.1088/1751-8113/41/29/295401
) / J. Phys. A by K Kurihara (2008) -
Vogel, M. W. & Gramotnev, D. K. Shape effects in tapered metal rods during adiabatic nanofocusing of plasmons. J. Appl. Phys. 107, 044303 (2010).
(
10.1063/1.3309409
) / J. Appl. Phys. by MW Vogel (2010) -
Søndergaard, T. et al. Plasmonic black gold by adiabatic nanofocusing and absorption of light in ultra-sharp convex grooves. Nature Commun. 3, 969 (2012).
(
10.1038/ncomms1976
) / Nature Commun. by T Søndergaard (2012) -
Søndergaard, T. & Bozhevolnyi, S. I. Theoretical analysis of plasmonic black gold: periodic arrays of ultra-sharp grooves. New J. Phys. 15, 013034 (2013).
(
10.1088/1367-2630/15/1/013034
) / New J. Phys. by T Søndergaard (2013) -
Rui, G. et al. Plasmonic near-field probe using the combination of concentric rings and conical tip under radial polarization illumination. J. Opt. 12, 035004 (2010).
(
10.1088/2040-8978/12/3/035004
) / J. Opt. by G Rui (2010) -
Ongarello, T. et al. Focusing dynamics on circular distributed tapered metallic waveguides by means of plasmonic vortex lenses. Opt. Lett. 37, 4516–4518 (2012).
(
10.1364/OL.37.004516
) / Opt. Lett. by T Ongarello (2012) -
He, X., Yang, L. & Yang, T. Optical nanofocusing by tapering coupled photonic-plasmonic waveguides. Opt. Express 19, 12865–12872 (2011).
(
10.1364/OE.19.012865
) / Opt. Express by X He (2011) -
Ropers, C. et al. Grating-coupling of surface plasmons onto metallic tips: a nanoconfined light source. Nano Lett. 7, 2784–2788 (2007).
(
10.1021/nl071340m
) / Nano Lett. by C Ropers (2007) -
Tan, S. J. & Gramotnev, D. K. Analysis of efficiency and optimization of plasmon energy coupling into nanofocusing metal wedges. J. Appl. Phys. 107, 094301 (2010).
(
10.1063/1.3399463
) / J. Appl. Phys. by SJ Tan (2010) -
Neacsu, C. C. et al. Near-field localization in plasmonic superfocusing: a nanoemitter on a tip. Nano Lett. 10, 592–596 (2010).
(
10.1021/nl903574a
) / Nano Lett. by CC Neacsu (2010) -
De Angelis, F. et al. A hybrid plasmonic–photonic nanodevice for label-free detection of a few molecules. Nano Lett. 8, 2321–2327 (2008).
(
10.1021/nl801112e
) / Nano Lett. by F De Angelis (2008) -
De Angelis, F. et al. Nanoscale chemical mapping using three-dimensional adiabatic compression of surface plasmon polaritons. Nature Nanotech. 5, 67–72 (2010).
(
10.1038/nnano.2009.348
) / Nature Nanotech. by F De Angelis (2010) -
Lindquist, N. C., Nagpal, P., Lesuffleur, A., Norris, D. J. & Oh, S.-H. Three-dimensional plasmonic nanofocusing. Nano Lett. 10, 1369–1373 (2010).
(
10.1021/nl904294u
) / Nano Lett. by NC Lindquist (2010) -
Berweger, S., Atkin, J. M., Olmon, R. L. & Raschke, M. B. Adiabatic tip-plasmon focusing for nano-Raman spectroscopy. J. Phys. Chem. Lett. 1, 3427–3432 (2010).
(
10.1021/jz101289z
) / J. Phys. Chem. Lett. by S Berweger (2010) -
Sadiq, D. et al. Adiabatic nanofocusing scattering-type optical nanoscopy of individual gold nanoparticles. Nano Lett. 11, 1609–1613 (2011).
(
10.1021/nl1045457
) / Nano Lett. by D Sadiq (2011) -
Hillenbrand, R. & Keilmann, F. Complex optical constants on a subwavelength scale. Phys. Rev. Lett. 85, 3029–3032 (2000).
(
10.1103/PhysRevLett.85.3029
) / Phys. Rev. Lett. by R Hillenbrand (2000) -
De Angelis, F. et al. Breaking the diffusion limit with super-hydrophobic delivery of molecules to plasmonic nanofocusing SERS structures. Nature Photon. 5, 682–687 (2011).
(
10.1038/nphoton.2011.222
) / Nature Photon. by F De Angelis (2011) -
Berweger, S., Atkin, J. M., Xu, X. G., Olmon, R. L. & Raschke, M. B. Femtosecond nanofocusing with full optical waveform control. Nano Lett. 11, 4309–4313 (2011).
(
10.1021/nl2023299
) / Nano Lett. by S Berweger (2011) -
Berweger, S., Atkin, J. M., Olmon, R. L. & Raschke, M. B. Light on the tip of a needle: plasmonic nanofocusing for spectroscopy on the nanoscale. J. Phys. Chem. Lett. 3, 945–952 (2012).
(
10.1021/jz2016268
) / J. Phys. Chem. Lett. by S Berweger (2012) -
Schmidt, S. et al. Adiabatic nanofocusing on ultrasmooth single-crystalline gold tapers creates a 10-nm-sized light source with few-cycle time resolution. ACS Nano 6, 6040–6048 (2012).
(
10.1021/nn301121h
) / ACS Nano by S Schmidt (2012) -
Kravtsov, V., Atkin, J. M. & Raschke, M. B. Group delay and dispersion in adiabatic plasmonic nanofocusing. Opt. Lett. 38, 1322–1324 (2013).
(
10.1364/OL.38.001322
) / Opt. Lett. by V Kravtsov (2013) -
Choi, H., Pile, D. F. P., Nam, S., Bartal, G. & Zhang, X. Compressing surface plasmons for nano-scale optical focusing. Opt. Express 17, 7519–7524 (2009).
(
10.1364/OE.17.007519
) / Opt. Express by H Choi (2009) -
Søndergaard, T. et al. Resonant plasmon nanofocusing by closed tapered gaps. Nano Lett. 10, 291–295 (2010).
(
10.1021/nl903563e
) / Nano Lett. by T Søndergaard (2010) -
Søndergaard, T. et al. Extraordinary optical transmission enhanced by nanofocusing. Nano Lett. 10, 3123–3128 (2010).
(
10.1021/nl101873g
) / Nano Lett. by T Søndergaard (2010) -
Beermann, J. et al. Localized field enhancements in two-dimensional V-groove metal arrays. J. Opt. Soc. Am. B 28, 372–378 (2011).
(
10.1364/JOSAB.28.000372
) / J. Opt. Soc. Am. B by J Beermann (2011) -
Beermann, J. et al. Field enhancement and extraordinary optical transmission by tapered periodic slits in gold films. New J. Phys. 13, 063029 (2011).
(
10.1088/1367-2630/13/6/063029
) / New J. Phys. by J Beermann (2011) -
Søndergaard, T. & Bozhevolnyi, S. I. Surface-plasmon polariton resonances in triangular-groove metal gratings. Phys. Rev. B 80, 195407 (2009).
(
10.1103/PhysRevB.80.195407
) / Phys. Rev. B by T Søndergaard (2009) -
Genet, C. & Ebbesen, T. W. Light in tiny holes. Nature 445, 39–46 (2007).
(
10.1038/nature05350
) / Nature by C Genet (2007) -
Schnell, M. et al. Nanofocusing of mid-infrared energy with tapered transmission lines. Nature Photon. 5, 283–287 (2011).
(
10.1038/nphoton.2011.33
) / Nature Photon. by M Schnell (2011) -
Volkov, V. S. et al. Plasmonic candle: towards efficient nanofocusing with channel plasmon polaritons. New J. Phys. 11, 113043 (2009).
(
10.1088/1367-2630/11/11/113043
) / New J. Phys. by VS Volkov (2009) -
Liu, L., Han, Z. & He, S. Novel surface plasmon waveguide for high integration. Opt. Express 13, 6645–6650 (2005).
(
10.1364/OPEX.13.006645
) / Opt. Express by L Liu (2005) -
Veronis, G. & Fan, S. Guided subwavelength plasmonic mode support by a slot in a thin metal film. Opt. Lett. 30, 3359–3361 (2005).
(
10.1364/OL.30.003359
) / Opt. Lett. by G Veronis (2005) -
Pile, D. F. P. et al. Two-dimensionally localized modes of a nanoscale gap plasmon waveguide. Appl. Phys. Lett. 87, 261114 (2005).
(
10.1063/1.2149971
) / Appl. Phys. Lett. by DFP Pile (2005) -
Pile, D. F. P., Gramotnev, D. K., Oulton, R. F. & Zhang, X. On long-range plasmonic modes in metallic gaps. Opt. Express 15, 13669–13674 (2007).
(
10.1364/OE.15.013669
) / Opt. Express by DFP Pile (2007) -
Park, I.-Y. et al. Plasmonic generation of ultrashort extreme-ultraviolet light pulses. Nature Photon. 5, 677–681 (2011).
(
10.1038/nphoton.2011.258
) / Nature Photon. by I-Y Park (2011) -
Tan, S. J. & Gramotnev, D. K. Heating effects in nanofocusing metal wedges. J. Appl. Phys. 110, 034310 (2011).
(
10.1063/1.3615843
) / J. Appl. Phys. by SJ Tan (2011) -
Kauranen, M. & Zayats, A. V. Nonlinear plasmonics. Nature Photon. 6, 737–748 (2012).
(
10.1038/nphoton.2012.244
) / Nature Photon. by M Kauranen (2012) -
Verhagen, E., Kuipers, L. & Polman, A. Enhanced nonlinear optical effects with a tapered plasmonic waveguide. Nano Lett. 7, 334–337 (2007).
(
10.1021/nl062440f
) / Nano Lett. by E Verhagen (2007) -
Davoyan, A. R., Shadrivov, I. V., Zharov, A. A., Gramotnev, D. K. & Kivshar, Y. S. Nonlinear nanofocusing in tapered plasmonic waveguides. Phys. Rev. Lett. 105, 116804 (2010).
(
10.1103/PhysRevLett.105.116804
) / Phys. Rev. Lett. by AR Davoyan (2010) -
MacDonald, K. F., Sámson, Z. L., Stockman, M. I. & Zheludev, N. I. Ultrafast active plasmonics. Nature Photon. 3, 55–58 (2009).
(
10.1038/nphoton.2008.249
) / Nature Photon. by KF MacDonald (2009) -
Akimov, A. V. et al. Generation of single optical plasmons in metallic nanowires coupled to quantum dots. Nature 450, 402–406 (2007).
(
10.1038/nature06230
) / Nature by AV Akimov (2007) -
Scholl, J. A., Koh, A. L. & Dionne, J. A. Quantum plasmon resonances of individual metallic nanoparticles. Nature 483, 421–427 (2012).
(
10.1038/nature10904
) / Nature by JA Scholl (2012)
Dates
Type | When |
---|---|
Created | 11 years, 8 months ago (Dec. 24, 2013, 4:03 a.m.) |
Deposited | 2 years, 3 months ago (May 18, 2023, 8:10 p.m.) |
Indexed | 3 weeks, 3 days ago (Aug. 2, 2025, 12:31 a.m.) |
Issued | 11 years, 8 months ago (Dec. 24, 2013) |
Published | 11 years, 8 months ago (Dec. 24, 2013) |
Published Online | 11 years, 8 months ago (Dec. 24, 2013) |
Published Print | 11 years, 7 months ago (Jan. 1, 2014) |
@article{Gramotnev_2013, title={Nanofocusing of electromagnetic radiation}, volume={8}, ISSN={1749-4893}, url={http://dx.doi.org/10.1038/nphoton.2013.232}, DOI={10.1038/nphoton.2013.232}, number={1}, journal={Nature Photonics}, publisher={Springer Science and Business Media LLC}, author={Gramotnev, Dmitri K. and Bozhevolnyi, Sergey I.}, year={2013}, month=dec, pages={13–22} }