Optics and Precision Engineering, Volume. 30, Issue 15, 1802(2022)
Multifunctional lab on fiber tips based on metasurface
[1] LIU Y, DENG H C, YUAN L B. A novel polyvinyl alcohol and hypromellose gap-coated humidity sensor based on a Mach-Zehnder interferometer with off-axis spiral deformation[J]. Sensors and Actuators B: Chemical, 284, 323-329(2019).
[2] LIU Y, ZHOU A, YUAN L B. Sensitivity-enhanced humidity sensor based on helix structure-assisted Mach-Zehnder interference[J]. Optics Express, 27, 35609-35620(2019).
[3] LIU Y, XIA Q, ZHOU A et al. Multi-parameter sensing based on surface plasma resonance with tungsten disulfide sheets coated[J]. Optics Express, 28, 6084-6094(2020).
[4] LIU Y, ZHOU A, YUAN L B. Gelatin-coated Michelson interferometric humidity sensor based on a multicore fiber with helical structure[J]. Journal of Lightwave Technology, 37, 2452-2457(2019).
[5] LIU Y, DENG H C, YUAN L B. Arc-discharge-induced off-axis spiral long period fiber gratings and their sensing characteristics[J]. Optical Fiber Technology, 52, 101950(2019).
[6] KOSTOVSKI G, STODDART P R, MITCHELL A. The optical fiber tip: an inherently light-coupled microscopic platform for micro- and nanotechnologies[J]. Advanced Materials (Deerfield Beach, Fla), 26, 3798-3820(2014).
[7] PISSADAKIS S. Lab-in-a-fiber sensors: a review[J]. Microelectronic Engineering, 217, 111105(2019).
[8] XIONG Y F, XU F. Multifunctional integration on optical fiber tips: challenges and opportunities[J]. Advanced Photonics, 2(2020).
[9] VIETS C, HILL W. Comparison of fibre-optic SERS sensors with differently prepared tips[J]. Sensors and Actuators B: Chemical, 51, 92-99(1998).
[10] MULLEN K I, CARRON K T. Surface-enhanced Raman spectroscopy with abrasively modified fiber optic probes[J]. Analytical Chemistry, 63, 2196-2199(1991).
[11] GROSJEAN T, SALEH S S, SUAREZ M A et al. Fiber microaxicons fabricated by a polishing technique for the generation of Bessel-like beams[J]. Applied Optics, 46, 8061-8067(2007).
[12] JI J K, YUAN L B. Transmission enhanced SPR nano-microscope[J]. Optics Express, 28, 22297-22306(2020).
[13] TANG X Y, ZHANG Y, SU W J et al. Super-low-power optical trapping of a single nanoparticle[J]. Optics Letters, 44, 5165-5168(2019).
[14] LIU S Q, SHI B J, WANG Y et al. Whispering gallery modes in a liquid-filled hollow glass microsphere[J]. Optics Letters, 42, 4659-4662(2017).
[15] LIU S Q, SHI B J, SUN W M et al. Whispering gallery mode resonance transfer in hollow microcavities[J]. Applied Physics Express, 11(2018).
[16] BRUNO F A, PISCO M, GRUCA G et al. Opto-mechanical lab-on-fiber accelerometers[C], 11199, 85-88(2019).
[17] PISCO M, BRUNO F A, GALLUZZO D et al. Opto-mechanical lab-on-fibre seismic sensors detected the Norcia earthquake[J]. Scientific Reports, 8, 6680(2018).
[18] HUANG W, ZHANG Z, HE J et al. Nonlinear hydraulic pressure response of an improved fiber tip interferometric high-pressure sensor[J]. Sensors (Basel, Switzerland), 20, 2548(2020).
[19] LIU Z Y, CAO H Q, XU F. Fiber-optic Lorentz force magnetometer based on a gold-graphene composite membrane[J]. Applied Physics Letters, 112, 203504(2018).
[20] MILENKO K, FUGLERUD S S, AKSNES A et al. Optimization of SERS sensing with micro-lensed optical fibers and Au nano-film[J]. Journal of Lightwave Technology, 38, 2081-2085(2020).
[21] LIU B N, LUO J X, LIU S et al. A probe-shaped sensor with FBG and fiber-tip bubble for pressure and temperature sensing[J]. Photonic Sensors, 11, 411-417(2021).
[22] GORODETSKY M L, SAVCHENKOV A A, ILCHENKO V S. Ultimate Q of optical microsphere resonators[C], 2799, 389-391(1996).
[23] LIU Y, DENG H C, YUAN L B. Directional torsion and strain discrimination based on Mach-Zehnder interferometer with off-axis twisted deformations[J]. Optics & Laser Technology, 120, 105754(2019).
[24] CHEN Y P, LUO J X, LIU S et al. A fabry-perot interferometer with asymmetrical tapered-fiber for improving strain sensitivity[J]. Journal of Lightwave Technology, 39, 1509-1514(2021).
[25] LUCOTTI A, ZERBI G. Fiber-optic SERS sensor with optimized geometry[J]. Sensors and Actuators B: Chemical, 121, 356-364(2007).
[26] MARUYAMA K, OHKAWA H, OGAWA S et al. Fabrication and characterization of a nanometer-sized optical fiber electrode based on selective chemical etching for scanning electrochemical/optical microscopy[J]. Analytical Chemistry, 78, 1904-1912(2006).
[27] WANG Z Q, XIE S R, JIANG X et al. Optically addressable array of optomechanically compliant glass nanospikes on the endface of a soft-glass photonic crystal fiber[J]. ACS Photonics, 6, 2942-2948(2019).
[28] SLOYAN K, MELKONYAN H, APOSTOLERIS H et al. A review of focused ion beam applications in optical fibers[J]. Nanotechnology, 32, 472004(2021).
[29] LIBERALE C, MINZIONI P, BRAGHERI F et al. Miniaturized all-fibre probe for three-dimensional optical trapping and manipulation[J]. Nature Photonics, 1, 723-727(2007).
[30] IANNUZZI D, DELADI S, GADGIL V J et al. Monolithic fiber-top sensor for critical environments and standard applications[J]. Applied Physics Letters, 88(2006).
[31] CABRINI S, LIBERALE C, COJOC D et al. Axicon lens on optical fiber forming optical tweezers, made by focused ion beam milling[J]. Microelectronic Engineering, 83, 804-807(2006).
[32] DHAWAN A, MUTH J F, LEONARD D N et al. FIB fabrication of metallic nanostructures on end-faces of optical fibers for chemical sensing applications[J]. Journal of Vacuum Science & Technology B, Microelectronics and Nanometer Structures, 26, 2168-2173(2008).
[33] ANDRADE G F S, HAYASHI J G, RAHMAN M M et al. Surface-enhanced resonance Raman scattering (SERRS) using Au nanohole arrays on optical fiber tips[J]. Plasmonics, 8, 1113-1121(2013).
[34] KANG S H, JOE H E, KIM J et al. Subwavelength plasmonic lens patterned on a composite optical fiber facet for quasi-one-dimensional Bessel beam generation[J]. Applied Physics Letters, 98, 241103(2011).
[35] PRINCIPE M, CONSALES M, MICCO A et al. Optical fiber meta-tips[J]. Light: Science & Applications, 6(2017).
[36] YUAN G H, ROGERS E T, ZHELUDEV N I. Achromatic super-oscillatory lenses with sub-wavelength focusing[J]. Light: Science & Applications, 6(2017).
[37] MA X D, HUO H B, WANG W H et al. Surface-enhanced Raman scattering sensor on an optical fiber probe fabricated with a femtosecond laser[J]. Sensors (Basel, Switzerland), 10, 11064-11071(2010).
[38] LIU Y, LIN H F, DAI Y T et al. Fiber in-line Mach-Zehnder interferometer for gas pressure sensing[J]. IEEE Sensors Journal, 18, 8012-8016(2018).
[39] LIU Y, LIN H F, DAI Y T et al. Humidity sensor based on an In-fiber integrated Mach–Zehnder interferometer[J]. IEEE Photonics Technology Letters, 31, 393-396(2019).
[40] XU B J, HE J, DU B et al. Femtosecond laser point-by-point inscription of an ultra-weak fiber Bragg grating array for distributed high-temperature sensing[J]. Optics Express, 29, 32615(2021).
[41] KIM J K, KIM J et al. Fabrication of micro Fresnel zone plate lens on a mode-expanded hybrid optical fiber using a femtosecond laser ablation system[J]. IEEE Photonics Technology Letters, 21, 21-23(2009).
[42] LAN X W, HAN Y K, WEI T et al. Surface-enhanced Raman-scattering fiber probe fabricated by femtosecond laser[J]. Optics Letters, 34, 2285-2287(2009).
[43] CONSALES M, RICCIARDI A, CRESCITELLI A et al. Lab-on-fiber technology: toward multifunctional optical nanoprobes[J]. ACS Nano, 6, 3163-3170(2012).
[44] SANDERS M, LIN Y B, WEI J J et al. An enhanced LSPR fiber-optic nanoprobe for ultrasensitive detection of protein biomarkers[J]. Biosensors and Bioelectronics, 61, 95-101(2014).
[45] FENG S F, DARMAWI S, HENNING T et al. A miniaturized sensor consisting of concentric metallic nanorings on the end facet of an optical fiber[J]. Small (Weinheim an Der Bergstrasse, Germany), 8, 1937-1944(2012).
[46] JOHNSON E G, STACK J, SULESKI T J et al. Fabrication of micro optics on coreless fiber segments[J]. Applied Optics, 42, 785-791(2003).
[47] PETRUŠIS A, RECTOR J H, SMITH K et al. The align-and-shine technique for series production of photolithography patterns on optical fibres[J]. Journal of Micromechanics and Microengineering, 19(2009).
[48] RICCIARDI A, CONSALES M, QUERO G et al. Versatile optical fiber nanoprobes: from plasmonic biosensors to polarization-sensitive devices[J]. ACS Photonics, 1, 69-78(2014).
[49] LIN Y B, ZOU Y, LINDQUIST R G. A reflection-based localized surface plasmon resonance fiber-optic probe for biochemical sensing[J]. Biomedical Optics Express, 2, 478-484(2011).
[50] FENG S F, ZHANG X P, WANG H et al. Fiber coupled waveguide grating structures[J]. Applied Physics Letters, 96, 133101(2010).
[51] YANG X, ILERI N, LARSON C C et al. Nanopillar array on a fiber facet for highly sensitive surface-enhanced Raman scattering[J]. Optics Express, 20, 24819-24826(2012).
[52] CHANDRAPPAN J, ZHANG J, MOHAN R V et al. Optical coupling methods for cost-effective polymer optical fiber communication[J]. IEEE Transactions on Components and Packaging Technologies, 32, 593-599(2009).
[53] SAKATA H, IMADA A. Lensed plastic optical fiber employing concave end filled with high-index resin[J]. Journal of Lightwave Technology, 20, 638-642(2002).
[54] HUANG Z L, LEI X, LIU Y et al. Tapered optical fiber probe assembled with plasmonic nanostructures for surface-enhanced Raman scattering application[J]. ACS Applied Materials & Interfaces, 7, 17247-17254(2015).
[55] YAP F L, THONIYOT P, KRISHNAN S et al. Nanoparticle cluster arrays for high-performance SERS through directed self-assembly on flat substrates and on optical fibers[J]. ACS Nano, 6, 2056-2070(2012).
[56] PISCO M, GALEOTTI F, QUERO G et al. Nanosphere lithography for optical fiber tip nanoprobes[J]. Light: Science & Applications, 6(2017).
[57] QUERO G, ZITO G, MANAGÒ S et al. Nanosphere lithography on fiber: towards engineered lab-on-fiber SERS optrodes[J]. Sensors (Basel, Switzerland), 18, 680(2018).
[58] RABEAU J R, HUNTINGTON S T, GREENTREE A D et al. Diamond chemical-vapor deposition on optical fibers for fluorescence waveguiding[J]. Applied Physics Letters, 86, 134104(2005).
[59] CHEN H, YIN J D, YANG J W et al. Transition-metal dichalcogenides heterostructure saturable absorbers for ultrafast photonics[J]. Optics Letters, 42, 4279-4282(2017).
[60] HUANG C J, XIE W J, LEE D W et al. Optical fiber humidity sensor with porous TiO2/SiO2/TiO2 coatings on fiber tip[J]. IEEE Photonics Technology Letters, 27, 1495-1498(2015).
[61] XIONG C, ZHOU J T, LIAO C R et al. Fiber-tip polymer microcantilever for fast and highly sensitive hydrogen measurement[J]. ACS Applied Materials & Interfaces, 12, 33163-33172(2020).
[62] ZOU M Q, LIAO C R, LIU S et al. Fiber-tip polymer clamped-beam probe for high-sensitivity nanoforce measurements[J]. Light: Science & Applications, 10, 171(2021).
[63] PLIDSCHUN M, REN H R, KIM J et al. Ultrahigh numerical aperture meta-fibre for flexible optical trapping[J]. Light: Science & Applications, 10, 57(2021).
[64] LIBERALE C, COJOC G, BRAGHERI F et al. Integrated microfluidic device for single-cell trapping and spectroscopy[J]. Scientific Reports, 3, 1258(2013).
[65] KIM J A, WALES D J, THOMPSON A J et al. Fiber-optic SERS probes fabricated using two-photon polymerization for rapid detection of bacteria[J]. Advanced Optical Materials, 8, 1901934(2020).
[66] XIE Z W, FENG S F, WANG P J et al. Demonstration of a 3D radar-like SERS sensor micro- and nanofabricated on an optical fiber[J]. Advanced Optical Materials, 3, 1232-1239(2015).
[67] WANG G R, WANG L, CHENG Z et al. High-performance plasmonic lab-on-fiber sensing system constructed by universal polymer assisted transfer technique[J]. Nanotechnology, 33(2022).
[68] BAO Q L, ZHANG H, WANG Y et al. Atomic-layer graphene as a saturable absorber for ultrafast pulsed lasers[J]. Advanced Functional Materials, 19, 3077-3083(2009).
[69] SANTOS J S, RAIMUNDO I M, CORDEIRO C M B et al. Characterisation of a Nafion film by optical fibre Fabry-Perot interferometry for humidity sensing[J]. Sensors and Actuators B: Chemical, 196, 99-105(2014).
[70] CHU R, GUAN C Y, YANG J et al. High extinction ratio D-shaped fiber polarizers coated by a double graphene/PMMA stack[J]. Optics Express, 25, 13278-13285(2017).
[72] SMYTHE E J, DICKEY M D, WHITESIDES G M et al. A technique to transfer metallic nanoscale patterns to small and non-planar surfaces[J]. ACS Nano, 3, 59-65(2009).
[73] SMYTHE E J, DICKEY M D, BAO J M et al. Optical antenna arrays on a fiber facet for
[74] HE X L, YI H, LONG J et al. Plasmonic crystal cavity on single-mode optical fiber end facet for label-free biosensing[J]. Applied Physics Letters, 108, 231105(2016).
[75] SHAMBAT G, RAJASEKHAR KOTHAPALLI S, KHURANA A et al. A photonic crystal cavity-optical fiber tip nanoparticle sensor for biomedical applications[J]. Applied Physics Letters, 100, 213702(2012).
[76] PENDRY J B. Negative refraction makes a perfect lens[J]. Physical Review Letters, 85, 3966-3969(2000).
[77] SMITH D R, PADILLA W J, VIER D C et al. Composite medium with simultaneously negative permeability and permittivity[J]. Physical Review Letters, 84, 4184-4187(2000).
[78] PENDRY J B, SCHURIG D, SMITH D R. Controlling electromagnetic fields[J]. Science, 312, 1780-1782(2006).
[79] YU N F, CAPASSO F. Optical metasurfaces and prospect of their applications including fiber optics[J]. Journal of Lightwave Technology, 33, 2344-2358(2015).
[80] YU N F, CAPASSO F. Flat optics with designer metasurfaces[J]. Nature Materials, 13, 139-150(2014).
[81] ZHANG X Y, GUAN C Y, WANG K D et al. Multi-focus optical fiber lens based on all-dielectric metasurface[J]. Chinese Optics Letters, 19(2021).
[82] ASADOLLAHBAIK A, THIELE S, WEBER K et al. Highly efficient dual-fiber optical trapping with 3D printed diffractive Fresnel lenses[J]. ACS Photonics, 7, 88-97(2020).
[83] YU J, BAI Z Y, ZHU G X et al. 3D nanoprinted kinoform spiral zone plates on fiber facets for high-efficiency focused vortex beam generation[J]. Optics Express, 28, 38127-38139(2020).
[84] RAVINDRANATH A L, SHARIATDOUST M S, MATHEW S et al. Colloidal lithography double-nanohole optical trapping of nanoparticles and proteins[J]. Optics Express, 27, 16184-16194(2019).
[85] PISCO M, GALEOTTI F, QUERO G et al. Miniaturized sensing probes based on metallic dielectric crystals self-assembled on optical fiber tips[J]. ACS Photonics, 1, 917-927(2014).
[86] SCHEERLINCK S, DUBRUEL P, BIENSTMAN P et al. Metal grating patterning on fiber facets by UV-based nano imprint and transfer lithography using optical alignment[J]. Journal of Lightwave Technology, 27, 1415-1420(2009).
[87] KOSTOVSKI G, CHINNASAMY U, JAYAWARDHANA S et al. Sub-15nm optical fiber nanoimprint lithography: a parallel, self-aligned and portable approach[J]. Advanced Materials (Deerfield Beach, Fla), 23, 531-535(2011).
[88] JIA P P, KONG D P, EBENDORFF-HEIDEPRIEM H. Resist-free nanoimprinting on optical fibers for plasmonic optrodes[J]. Applied Materials Today, 20, 100751(2020).
[89] RICCIARDI A, CONSALES M, QUERO G et al. Lab-on-Fiber devices as an all around platform for sensing[J]. Optical Fiber Technology, 19, 772-784(2013).
[90] YANG J Y, GHIMIRE I, WU P C et al. Photonic crystal fiber metalens[J]. Nanophotonics, 8, 443-449(2019).
[91] GIAQUINTO M, ALIBERTI A, MICCO A et al. Cavity-enhanced lab-on-fiber technology: toward advanced biosensors and nano-opto-mechanical active devices[J]. ACS Photonics, 6, 3271-3280(2019).
[92] GIAQUINTO M, PRINCIPE S, MICCO A et al. Analysis of thermo-plasmonic lab-on-fiber probes in liquid environments[J]. Smart Materials and Structures, 30, 125007(2021).
[93] LAN X W, CHENG B K, YANG Q B et al. Reflection based extraordinary optical transmission fiber optic probe for refractive index sensing[J]. Sensors and Actuators B: Chemical, 193, 95-99(2014).
[94] BERTHELOT J, AĆIMOVIĆ S S, JUAN M L et al. Three-dimensional manipulation with scanning near-field optical nanotweezers[J]. Nature Nanotechnology, 9, 295-299(2014).
[95] ETER A E, HAMEED N M, BAIDA F I et al. Fiber-integrated optical nano-tweezer based on a bowtie-aperture nano-antenna at the apex of a SNOM tip[J]. Optics Express, 22, 10072-10080(2014).
[96] LIU Y, CHEN Y F, ZHOU S P et al. Fiber-optic meta-tip with multi-sensitivity resonance dips for humidity sensing[J]. Sensors and Actuators B: Chemical, 352, 130957(2022).
[97] GELFAND R M, WHEATON S, GORDON R. Cleaved fiber optic double nanohole optical tweezers for trapping nanoparticles[J]. Optics Letters, 39, 6415-6417(2014).
[98] VO T P, MIVELLE M, CALLARD S et al. Near-field probing of slow Bloch modes on photonic crystals with a nanoantenna[J]. Optics Express, 20, 4124-4135(2012).
[99] GUAN C Y, DING M, SHI J H et al. Compact all-fiber plasmonic Airy-like beam generator[J]. Optics Letters, 39, 1113-1116(2014).
[100] WANG M J, GUAN C Y, CHENG L et al. Multicore fiber integrated beam shaping devices for long-range plasmonic trapping[J]. Optics Express, 29, 28416-28426(2021).
[101] LIPOMI D J, MARTINEZ R V, KATS M A et al. Patterning the tips of optical fibers with metallic nanostructures using nanoskiving[J]. Nano Letters, 11, 632-636(2011).
[102] SHAMBAT G, PROVINE J, RIVOIRE K et al. Optical fiber tips functionalized with semiconductor photonic crystal cavities[J]. Applied Physics Letters, 99, 191102(2011).
[103] JUNG I W, PARK B, PROVINE J et al. Highly sensitive monolithic silicon photonic crystal fiber tip sensor for simultaneous measurement of refractive index and temperature[J]. Journal of Lightwave Technology, 29, 1367-1374(2011).
[104] DU B B, RUAN Y L, LY T T et al. MoS2-enhanced epoxy-based plasmonic fiber-optic sensor for selective and sensitive detection of methanol[J]. Sensors and Actuators B: Chemical, 305, 127513(2020).
[105] ZHAO E M, JIA P P, EBENDORFF-HEIDEPRIEM H et al. Localized surface plasmon resonance sensing structure based on gold nanohole array on beveled fiber edge[J]. Nanotechnology, 28, 435504(2017).
[106] JIA P P, YANG J. A plasmonic optical fiber patterned by template transfer as a high-performance flexible nanoprobe for real-time biosensing[J]. Nanoscale, 6, 8836-8843(2014).
[107] JIA P P, YANG Z L, YANG J et al. Quasiperiodic nanohole arrays on optical fibers as plasmonic sensors: fabrication and sensitivity determination[J]. ACS Sensors, 1, 1078-1083(2016).
[108] LIU Y, LI X W, CHEN Y F et al. Imaging-based optical barcoding for relative humidity sensing based on meta-tip[J]. Nanophotonics, 11, 111-118(2021).
Get Citation
Copy Citation Text
Yin LIU, Qiming LIAO, Lingling HUANG. Multifunctional lab on fiber tips based on metasurface[J]. Optics and Precision Engineering, 2022, 30(15): 1802
Category: Design,Fabrication and Application of Planar Optical Elements
Received: Apr. 13, 2022
Accepted: --
Published Online: Sep. 7, 2022
The Author Email: Lingling HUANG (huanglingling@bit.edu.cn)