Integrated micro-optical fluorescence detection system for microfluidic electrochromatography

被引:8
作者
Warren, ME [1 ]
Sweatt, WC [1 ]
Wendt, JR [1 ]
Bailey, CG [1 ]
Matzke, CM [1 ]
Arnold, DW [1 ]
Kemme, SA [1 ]
Allerman, AA [1 ]
Carter, TR [1 ]
Asbill, RE [1 ]
Samora, S [1 ]
机构
[1] Sandia Natl Labs, Albuquerque, NM 87185 USA
来源
MINIATURIZED SYSTEMS WITH MICRO-OPTICS AND MEMS | 1999年 / 3878卷
关键词
micro-optics; fluorescence; VCSEL; electrochromatography; diffractive optics; substrate-mode; microfluidics; chemical sensing;
D O I
10.1117/12.361260
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
We describe the design and microfabrication of an extremely compact optical system as a key element in an integrated capillary-channel electrochromatograph with laser induced fluorescence detection. The optical design uses substrate-made propagation within the fused silica substrate. The optical system includes a vertical cavity surface-emitting laser (VCSEL) array, two high performance microlenses and a commercial photodetector. The microlenses are multilevel diffractive optics patterned by electron beam lithography and etched by reactive ion etching in fused silica. Two generations of optical subsystems are described. The first generation design is integrated directly onto the capillary channel-containing substrate with a 6 mm separation between the VCSEL and photodetector. The second generation design separates the optical system onto its own module and the source to detector length is further compressed to 3.5 mm. The systems are designed for indirect fluorescence detection using infrared dyes. The first generation design has been tested with a 750 nm VCSEL exciting a 10(-4) M solution of CY-7 dye. The observed signal-to-noise ratio of better than 100:1 demonstrates that the background signal from scattered pump light is low despite the compact size of the optical system and meets the system sensitivity requirements.
引用
收藏
页码:185 / 192
页数:8
相关论文
共 21 条
[11]   Fabrication of plastic microfluidic components [J].
Martin, PM ;
Matson, DW ;
Bennett, WD ;
Hammerstrom, DJ .
MICROFLUIDIC DEVICES AND SYSTEMS, 1998, 3515 :172-176
[12]   Quartz channel fabrication for electrokinetically driven separations [J].
Matzke, CM ;
Arnold, DW ;
Ashby, CIH ;
Kravitz, SH ;
Warren, ME ;
Bailey, CG .
MICROFLUIDIC DEVICES AND SYSTEMS, 1998, 3515 :164-171
[13]   Microchannel electrophoretic separations of DNA in injection-molded plastic substrates [J].
McCormick, RM ;
Nelson, RJ ;
AlonsoAmigo, MG ;
Benvegnu, J ;
Hooper, HH .
ANALYTICAL CHEMISTRY, 1997, 69 (14) :2626-2630
[14]   Compact self-aligning assemblies with refractive microlens arrays made by contactless embossing [J].
Schulze, J ;
Ehrfeld, W ;
Muller, H ;
Picard, A .
MICRO-OPTICS INTEGRATION AND ASSEMBLIES, 1998, 3289 :22-32
[15]  
STERN MB, 1992, P SOC PHOTO-OPT INS, V1751, P85
[16]   DIFFRACTIVE OPTICAL-ELEMENTS FOR USE IN INFRARED SYSTEMS [J].
SWANSON, GJ ;
VELDKAMP, WB .
OPTICAL ENGINEERING, 1989, 28 (06) :605-608
[17]   THEORETICAL-MODEL OF ELECTROOSMOTIC FLOW FOR CAPILLARY ZONE ELECTROPHORESIS [J].
TAVARES, MFM ;
MCGUFFIN, VL .
ANALYTICAL CHEMISTRY, 1995, 67 (20) :3687-3696
[18]  
WANDT JR, 1999, IN PRESS J VACUUM SC, V17
[19]   VCSEL applications in sensors and microsystems [J].
Warren, ME ;
Carson, RF ;
Sweatt, WC ;
Wendt, JR ;
Nevers, JA ;
Crawford, MH ;
Hou, HQ .
VERTICAL-CAVITY SURFACE-EMITTING LASERS II, 1998, 3286 :42-51
[20]  
WENDT JR, 1999, IN PRESS J VACUUM SC, V17