Miniaturization of fluorescence sensing in optofluidic devices

被引:36
作者
Mariuta, Daniel [1 ,2 ]
Colin, Stephane [2 ]
Barrot-Lattes, Christine [2 ]
Le Calve, Stephane [3 ,4 ]
Korvink, Jan G. [1 ]
Baldas, Lucien [2 ]
Brandner, Juergen J. [1 ]
机构
[1] Karlsruhe Inst Technol, Inst Microstruct Technol, Campus Nord,Hermann von Helmholtz Pl 1, Eggenstein Leopoldshafen, Germany
[2] Univ Toulouse, Inst Clement Ader ICA, UPS, CNRS,INSA,ISAE SUPAERO,Mines Albi, Toulouse, France
[3] Univ Strasbourg, Inst Chem & Proc Energy Environm & Hlth ICPEES, Grp Atmospher Phys Chem, Strasbourg, France
[4] InAir Solut, 25 Rue Becquerel, Strasbourg, France
关键词
Lab-on-a-chip; Off; on-chip integration strategy; Lab-on-a-CMOS; Microfluidic-PCB; In-plane optics; Organic electronics; Fluorescence detection; ON-A-CHIP; MOLECULAR TAGGING VELOCIMETRY; PHOTONIC LAB; INTEGRATION; FIBER; SENSORS; FABRICATION; CMOS; COMMERCIALIZATION; MICROFABRICATION;
D O I
10.1007/s10404-020-02371-1
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Successful development of a micro-total-analysis system (mu TAS, lab-on-a-chip) is strictly related to the degree of miniaturization, integration, autonomy, sensitivity, selectivity, and repeatability of its detector. Fluorescence sensing is an optical detection method used for a large variety of biological and chemical assays, and its full integration within lab-on-a-chip devices remains a challenge. Important achievements were reported during the last few years, including improvements of previously reported methodologies, as well as new integration strategies. However, a universal paradigm remains elusive. This review considers achievements in the field of fluorescence sensing miniaturization, starting from off-chip approaches, representing miniaturized versions of their lab counter-parts, continuing gradually with strategies that aim to fully integrate fluorescence detection on-chip, and reporting the results around integration strategies based on optical-fiber-based designs, optical layer integrated designs, CMOS-based fluorescence sensing, and organic electronics. Further successful development in this field would enable the implementation of sensing networks in specific environments that, when coupled to Internet-of-Things (IoT) and artificial intelligence (AI), could provide real-time data collection and, therefore, revolutionize fields like health, environmental, and industrial sensing.
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页数:28
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共 120 条
  • [1] Modular Optofluidic Systems (MOPS)
    Ackermann, Tobias N.
    Dietvorst, Jiri
    Sanchis, Ana
    Salvador, Juan P.
    Munoz-Berbel, Xavier
    Alvarez-Conde, Erica
    Kopp, Daniel
    Zappe, Hans
    Marco, M. -Pilar
    Llobera, Andreu
    [J]. SPIE BIOPHOTONICS AUSTRALASIA, 2016, 10013
  • [2] A Digital Signal Processing-Assisted Microfluidic PCB for On-Chip Fluorescence Detection
    Babikian, Sarkis
    Li, G. P.
    Bachman, Mark
    [J]. IEEE TRANSACTIONS ON COMPONENTS PACKAGING AND MANUFACTURING TECHNOLOGY, 2017, 7 (06): : 846 - 854
  • [3] Modeling and design of micromachined optical Soller collimators for lensless CCD-based fluorometry
    Balsam, Joshua
    Ossandon, Miguel
    Bruck, Hugh Alan
    Rasooly, Avraham
    [J]. ANALYST, 2012, 137 (21) : 5011 - 5017
  • [4] Optics-Integrated Microfluidic Platforms for Biomolecular Analyses
    Bates, Kathleen E.
    Lu, Hang
    [J]. BIOPHYSICAL JOURNAL, 2016, 110 (08) : 1684 - 1697
  • [5] Plasmon-Enhanced Fluorescence Biosensors: a Review
    Bauch, Martin
    Toma, Koji
    Toma, Mana
    Zhang, Qingwen
    Dostalek, Jakub
    [J]. PLASMONICS, 2014, 9 (04) : 781 - 799
  • [6] Fluorescence based fiber optic and planar waveguide biosensors. A review
    Benito-Pena, Elena
    Valdes, Mayra Granda
    Glahn-Martinez, Bettina
    Moreno-Bondi, Maria C.
    [J]. ANALYTICA CHIMICA ACTA, 2016, 943 : 17 - 40
  • [7] Laser-induced fluorescence detection platform for point-of-care testing
    Berner, Marcel
    Hilbig, Urs
    Schubert, Markus B.
    Gauglitz, Guenter
    [J]. MEASUREMENT SCIENCE AND TECHNOLOGY, 2017, 28 (08)
  • [8] Discrete elements for 3D microfluidics
    Bhargava, Krisna C.
    Thompson, Bryant
    Malmstadt, Noah
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2014, 111 (42) : 15013 - 15018
  • [9] Bhattacharya B, 2017, FLUORESCENT NANOSENS
  • [10] Point-of-care and point-of-procedure optical imaging technologies for primary care and global health
    Boppart, Stephen A.
    Richards-Kortum, Rebecca
    [J]. SCIENCE TRANSLATIONAL MEDICINE, 2014, 6 (253)