Chemical-assisted femtosecond laser writing of lab-in-fibers

被引:89
作者
Haque, Moez [1 ]
Lee, Kenneth K. C. [1 ]
Ho, Stephen [1 ]
Fernandes, Luis A. [1 ]
Herman, Peter R. [1 ]
机构
[1] Univ Toronto, Inst Opt Sci, Dept Elect & Comp Engn, Toronto, ON, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
FABRY-PEROT-INTERFEROMETER; SURFACE-PLASMON RESONANCE; SINGLE-CELL DETECTION; OPTICAL-FIBER; WAVE-GUIDES; REFRACTIVE-INDEX; BRAGG GRATINGS; FUSED-SILICA; LOW-COST; SENSOR;
D O I
10.1039/c4lc00648h
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
The lab-on-chip (LOC) platform has presented a powerful opportunity to improve functionalization, parallelization, and miniaturization on planar or multilevel geometries that has not been possible with fiber optic technology. A migration of such LOC devices into the optical fiber platform would therefore open the revolutionary prospect of creating novel lab-in-fiber (LIF) systems on the basis of an efficient optical transport highway for multifunctional sensing. For the LIF, the core optical waveguide inherently offers a facile means to interconnect numerous types of sensing elements along the optical fiber, presenting a radical opportunity for optimizing the packaging and densification of diverse components in convenient geometries beyond that available with conventional LOCs. In this paper, three-dimensional patterning inside the optical fiber by femtosecond laser writing, together with selective chemical etching, is presented as a powerful tool to form refractive index structures such as optical waveguides and gratings as well as to open buried microfluidic channels and optical resonators inside the flexible and robust glass fiber. In this approach, optically smooth surfaces (similar to 12 nm rms) are introduced for the first time inside the fiber cladding that precisely conform to planar nanograting structures when formed by aberration-free focusing with an oil-immersion lens across the cylindrical fiber wall. This process has enabled optofluidic components to be precisely embedded within the fiber to be probed by either the single-mode fiber core waveguide or the laser-formed optical circuits. We establish cladding waveguides, X-couplers, fiber Bragg gratings, microholes, mirrors, optoftuidic resonators, and microfluidic reservoirs that define the building blocks for facile interconnection of inline core-waveguide devices with cladding optoftuidics. With these components, more advanced, integrated, and multiplexed fiber microsystems are presented demonstrating fluorescence detection, Fabry-Perot interferometric refractometry, and simultaneous sensing of refractive index, temperature, and bending strain. The flexible writing technique and multiplexed sensors described here open powerful prospects to migrate the benefits of LOCs into a more flexible and miniature LIF platform for highly functional and distributed sensing capabilities. The waveguide backbone of the [IF inherently provides an efficient exchange of information, combining sensing data that are attractive in telecom networks, smart catheters for medical procedures, compact sensors for security and defense, shape sensors, and low-cost health care products.
引用
收藏
页码:3817 / 3829
页数:13
相关论文
共 113 条
[1]   Fiber-optic evanescent wave biosensor for the detection of oligonucleotides [J].
Abel, AP ;
Weller, MG ;
Duveneck, GL ;
Ehrat, M ;
Widmer, HM .
ANALYTICAL CHEMISTRY, 1996, 68 (17) :2905-2912
[2]   TRANSMISSION OF A GAUSSIAN-BEAM THROUGH A FABRY-PEROT-INTERFEROMETER [J].
ABUSAFIA, H ;
ALTAHTAMOUNI, R ;
ABUALJARAYESH, I ;
YUSUF, NA .
APPLIED OPTICS, 1994, 33 (18) :3805-3811
[3]   Monolithic 100 mW Yb waveguide laser fabricated using the femtosecond-laser direct-write technique [J].
Ams, Martin ;
Dekker, Peter ;
Marshall, Graham D. ;
Withford, Michael J. .
OPTICS LETTERS, 2009, 34 (03) :247-249
[4]   Microfluidic sorting system based on optical waveguide integration and diode laser bar trapping [J].
Applegate, RW ;
Squier, J ;
Vestad, T ;
Oakey, J ;
Marr, DWM ;
Bado, P ;
Dugan, MA ;
Said, AA .
LAB ON A CHIP, 2006, 6 (03) :422-426
[5]   Fabrication of high-aspect ratio, micro-fluidic channels and tunnels using femtosecond laser pulses and chemical etching [J].
Bellouard, Y ;
Said, A ;
Dugan, M ;
Bado, P .
OPTICS EXPRESS, 2004, 12 (10) :2120-2129
[6]   Toward practical holey fiber technology: fabrication, splicing, modeling, and characterization [J].
Bennett, PJ ;
Monro, TM ;
Richardson, DJ .
OPTICS LETTERS, 1999, 24 (17) :1203-1205
[7]   Optofluidic chip for single cell trapping and stretching fabricated by a femtosecond laser [J].
Bragheri, Francesca ;
Ferrara, Lorenzo ;
Bellini, Nicola ;
Vishnubhatla, Krishna C. ;
Minzioni, Paolo ;
Ramponi, Roberta ;
Osellame, Roberto ;
Cristiani, Ilaria .
JOURNAL OF BIOPHOTONICS, 2010, 3 (04) :234-243
[8]  
Butt H-J., 2018, Surface and Interfacial Forces
[9]  
Caldas P., 2008, OPT ENG, V47
[10]  
Cheng H.Y., 2013, CLEO: 2013, pCM1H.3