Roadmap for optofluidics

Optofluidics, nominally the research area where optics and fluidics merge, is a relatively new research field and it is only in the last decade that there has been a large increase in the number of ...

[1]  Osborne Reynolds,et al.  XXIX. An experimental investigation of the circumstances which determine whether the motion of water shall be direct or sinuous, and of the law of resistance in parallel channels , 1883, Philosophical Transactions of the Royal Society of London.

[2]  J. Adler Chemotaxis in Bacteria , 1966, Science.

[3]  George Keith Batchelor,et al.  An Introduction to Fluid Dynamics. , 1969 .

[4]  A. Ashkin Acceleration and trapping of particles by radiation pressure , 1970 .

[5]  S. Chu,et al.  Observation of a single-beam gradient force optical trap for dielectric particles. , 1986, Optics letters.

[6]  A. Manz,et al.  Miniaturized total chemical analysis systems: A novel concept for chemical sensing , 1990 .

[7]  C. Birchmeier,et al.  Transient and locally restricted expression of the ros1 protooncogene during mouse development. , 1991, The EMBO journal.

[8]  Medizinisches Laserzentrum Lu ̈ beck,et al.  Shock wave emission and cavitation bubble generation by picosecond and nanosecond optical breakdown in water , 1996 .

[9]  H. Baltes,et al.  Industrial fabrication technology for CMOS infrared sensor arrays , 1997, Proceedings of International Solid State Sensors and Actuators Conference (Transducers '97).

[10]  A. Ashkin,et al.  Optical trapping and manipulation of neutral particles using lasers. , 1997, Proceedings of the National Academy of Sciences of the United States of America.

[11]  D. Golenbock,et al.  CD11/CD18 leukocyte integrins: new signaling receptors for bacterial endotoxin. , 1997, The Journal of surgical research.

[12]  G E Marti,et al.  Quantitative flow cytometry: inter-laboratory variation. , 1998, Cytometry.

[13]  Eran Socher,et al.  Optimal design and noise considerations of CMOS compatible IR thermoelectric sensors , 1998 .

[14]  M. Ogawa,et al.  Preliminary study of calibration-free continuous glucose monitoring with microdialysis technique , 1998, Proceedings of the 20th Annual International Conference of the IEEE Engineering in Medicine and Biology Society. Vol.20 Biomedical Engineering Towards the Year 2000 and Beyond (Cat. No.98CH36286).

[15]  A. Vogel,et al.  Laser-induced plasma formation in water at nanosecond to femtosecond time scales: Calculation of thresholds, absorption coefficients, and energy density , 1999 .

[16]  Tad Hogg,et al.  Robust self-assembly using highly designable structures , 1999 .

[17]  A. Rinzler,et al.  Carbon nanotube actuators , 1999, Science.

[18]  John W. Suh,et al.  CMOS integrated ciliary actuator array as a general-purpose micromanipulation tool for small objects , 1999 .

[19]  Itamar Willner,et al.  Glucose oxidase electrodes via reconstitution of the apo-enzyme: tailoring of novel glucose biosensors , 1999 .

[20]  Carlo D. Montemagno,et al.  Constructing nanomechanical devices powered by biomolecular motors , 1999 .

[21]  P Toutouzas,et al.  Heat production of atherosclerotic plaques and inflammation assessed by the acute phase proteins in acute coronary syndromes. , 2000, Journal of molecular and cellular cardiology.

[22]  Shannon E. Stitzel,et al.  Cross-reactive chemical sensor arrays. , 2000, Chemical reviews.

[23]  Rainer Laur,et al.  Advanced hybrid integrated low-power telemetric pressure monitoring system for biomedical applications , 2000, Proceedings IEEE Thirteenth Annual International Conference on Micro Electro Mechanical Systems (Cat. No.00CH36308).

[24]  Kazuhiko Ohe,et al.  Electromagnetic interference on medical equipment by low-power mobile telecommunication systems , 2000 .

[25]  Tihamer T Toth-Fejel Agents, assemblers, and ANTS: scheduling assembly with market and biological software mechanisms , 2000 .

[26]  K. Nozaki,et al.  Prevention of rat cerebral aneurysm formation by inhibition of nitric oxide synthase. , 2000, Circulation.

[27]  Hubert Trzaska,et al.  Electromagnetic Field Measurements in the Near Field , 2000 .

[28]  International Human Genome Sequencing Consortium Initial sequencing and analysis of the human genome , 2001, Nature.

[29]  Charles M. Lieber,et al.  Functional nanoscale electronic devices assembled using silicon nanowire building blocks. , 2001, Science.

[30]  Brian J. Bacskai,et al.  Imaging of amyloid-β deposits in brains of living mice permits direct observation of clearance of plaques with immunotherapy , 2001, Nature Medicine.

[31]  D. Scheinberg,et al.  Tumor Therapy with Targeted Atomic Nanogenerators , 2001, Science.

[32]  I. Shimoyama,et al.  Selective drive of electrostatic actuators using remote inductive powering , 2001, Technical Digest. MEMS 2001. 14th IEEE International Conference on Micro Electro Mechanical Systems (Cat. No.01CH37090).

[33]  J. Käs,et al.  The optical stretcher: a novel laser tool to micromanipulate cells. , 2001, Biophysical journal.

[34]  P. Yager,et al.  A rapid diffusion immunoassay in a T-sensor , 2001, Nature Biotechnology.

[35]  J. V. Moran,et al.  Initial sequencing and analysis of the human genome. , 2001, Nature.

[36]  D Artemov,et al.  Magnetic resonance pharmacoangiography to detect and predict chemotherapy delivery to solid tumors. , 2001, Cancer research.

[37]  D. Zwijnenburg,et al.  Relative quantification of 40 nucleic acid sequences by multiplex ligation-dependent probe amplification. , 2002, Nucleic acids research.

[38]  Serge Luryi,et al.  A family of novel DNA sequencing instruments based on single‐photon detection , 2002, Electrophoresis.

[39]  K. Hamad-Schifferli,et al.  Remote electronic control of DNA hybridization through inductive coupling to an attached metal nanocrystal antenna , 2002, Nature.

[40]  H. Becker,et al.  Polymer microfluidic devices. , 2002, Talanta.

[41]  M. Gad-el-Hak,et al.  Micro Flows: Fundamentals and Simulation , 2002 .

[42]  Said F. Al-Sarawi,et al.  Investigation into the future of RFID in biomedical applications , 2003, SPIE Microtechnologies.

[43]  S. Hanash,et al.  Disease proteomics , 2003, Nature.

[44]  Olaf Wiest,et al.  Theoretical Studies of Mixed-Valence Transition Metal Complexes for Molecular Computing , 2003 .

[45]  Tobias Preckel,et al.  Cytometric analysis of protein expression and apoptosis in human primary cells with a novel microfluidic chip‐based system , 2003, Cytometry. Part A : the journal of the International Society for Analytical Cytology.

[46]  S. Fields,et al.  Protein analysis on a proteomic scale , 2003, Nature.

[47]  Jan M. Rabaey,et al.  Energy scavenging for wireless sensor networks , 2003 .

[48]  Adriano Cavalcanti Assembly automation with evolutionary nanorobots and sensor-based control applied to nanomedicine , 2003 .

[49]  Aaron R Wheeler,et al.  Microfluidic device for single-cell analysis. , 2003, Analytical chemistry.

[50]  Demetri Psaltis,et al.  A microfluidic 2×2 optical switch , 2004 .

[51]  W. Liu,et al.  Design and evaluation of integrated electromagnetic power passives with vertical surface interconnections , 2004, Nineteenth Annual IEEE Applied Power Electronics Conference and Exposition, 2004. APEC '04..

[52]  Scott E Kern,et al.  History and principles of conductive media for standard DNA electrophoresis. , 2004, Analytical biochemistry.

[53]  Narayanan Vijaykrishnan,et al.  Design of a nanosensor array architecture , 2004, GLSVLSI '04.

[54]  Gaurav Sharma,et al.  Computational studies of viral protein nano-actuators , 2004 .

[55]  E. D’Angelo,et al.  Increased neurotransmitter release during long‐term potentiation at mossy fibre–granule cell synapses in rat cerebellum , 2004, The Journal of physiology.

[56]  Charles Sfeir,et al.  Nanostructured ceramics in medical devices: Applications and prospects , 2004 .

[57]  P. Mohseni,et al.  Wireless multichannel biopotential recording using an integrated FM telemetry circuit , 2005, IEEE Transactions on Neural Systems and Rehabilitation Engineering.

[58]  J. Baret,et al.  Electrowetting: from basics to applications , 2005 .

[59]  Elinore M Mercer,et al.  Microfluidic sorting of mammalian cells by optical force switching , 2005, Nature Biotechnology.

[60]  A Cuschieri,et al.  Laparoscopic surgery: current status, issues and future developments. , 2005, The surgeon : journal of the Royal Colleges of Surgeons of Edinburgh and Ireland.

[61]  B. J. Eggleton,et al.  Optofluidics enables compact tunable interferometer , 2005 .

[62]  I. Del Villar,et al.  ESA-based in-fiber nanocavity for hydrogen-peroxide detection , 2005, IEEE Transactions on Nanotechnology.

[63]  Roger J. Narayan,et al.  Pulsed laser deposition of functionally gradient diamondlike carbon–metal nanocomposites , 2005 .

[64]  A Mitchell,et al.  Application of optical trapping to beam manipulation in optofluidics. , 2005, Optics express.

[65]  J. Xi,et al.  Self-assembled microdevices driven by muscle , 2005, Nature materials.

[66]  Kaustav Banerjee,et al.  Performance analysis of carbon nanotube interconnects for VLSI applications , 2005, ICCAD-2005. IEEE/ACM International Conference on Computer-Aided Design, 2005..

[67]  Gert Cauwenberghs,et al.  Power harvesting and telemetry in CMOS for implanted devices , 2004, IEEE Transactions on Circuits and Systems I: Regular Papers.

[68]  D. Psaltis,et al.  Nanofluidic tuning of photonic crystal circuits , 2006 .

[69]  Peiming Zhang,et al.  Tuning the chemical selectivity of SWNT-FETs for detection of heavy-metal ions. , 2006, Small.

[70]  P. Couvreur,et al.  Nanotechnology: Intelligent Design to Treat Complex Disease , 2006, Pharmaceutical Research.

[71]  Arthur Ashkin,et al.  Optical Trapping and Manipulation of Neutral Particles Using Lasers: A Reprint Volume With Commentaries , 2006 .

[72]  Geeta M Patel,et al.  Nanorobot: A versatile tool in nanomedicine , 2006, Journal of drug targeting.

[73]  Metin Sitti,et al.  Design Methodology for Biomimetic Propulsion of Miniature Swimming Robots , 2004 .

[74]  Zhaoyu Zhang,et al.  Mechanically tunable optofluidic distributed feedback dye laser , 2006, 2006 Digest of the LEOS Summer Topical Meetings.

[75]  N. Seeman,et al.  Operation of a DNA Robot Arm Inserted into a 2D DNA Crystalline Substrate , 2006, Science.

[76]  Luigi Raffo,et al.  Fully electronic DNA hybridization detection by a standard CMOS biochip , 2006 .

[77]  S. Raman,et al.  Dielectrophoretic integration of nanodevices with CMOS VLSI circuitry , 2006, IEEE Transactions on Nanotechnology.

[78]  Sylvain Martel,et al.  Method of propulsion of a ferromagnetic core in the cardiovascular system through magnetic gradients generated by an MRI system , 2006, IEEE Transactions on Biomedical Engineering.

[79]  Sanjay P. Ahuja,et al.  A Survey on Wireless Grid Computing , 2006, The Journal of Supercomputing.

[80]  Jason Heikenfeld,et al.  Agile wide-angle beam steering with electrowetting microprisms. , 2006, Optics express.

[81]  Carlos Caldas,et al.  Bcl-2 Is a Prognostic Marker in Breast Cancer Independently of the Nottingham Prognostic Index , 2006, Clinical Cancer Research.

[82]  Nikolaj Gadegaard,et al.  Cell signaling arising from nanotopography: implications for nanomedical devices. , 2006, Nanomedicine.

[83]  Min Zhang,et al.  Local silicon-gate carbon nanotube field effect transistors using silicon-on-insulator technology , 2006 .

[84]  D. Psaltis,et al.  Developing optofluidic technology through the fusion of microfluidics and optics , 2006, Nature.

[85]  J Downward,et al.  Raf plus TGFβ-dependent EMT is initiated by endocytosis and lysosomal degradation of E-cadherin , 2006, Oncogene.

[86]  Xudong Fan,et al.  Liquid-core optical ring-resonator sensors. , 2006, Optics letters.

[87]  Hu-lin Li,et al.  Selfassembly of gold nanoparticles onto the surface of multiwall carbon nanotubes functionalized with mercaptobenzene moieties , 2006 .

[88]  Jordan Patti,et al.  Using biological inspiration to engineer functional nanostructured materials. , 2006, Small.

[89]  Y. Sugimoto,et al.  Estrogen‐mediated post transcriptional down‐regulation of P‐glycoprotein in MDR1‐transduced human breast cancer cells , 2006, Cancer science.

[90]  Michael G. Roper,et al.  A fully integrated microfluidic genetic analysis system with sample-in–answer-out capability , 2006, Proceedings of the National Academy of Sciences.

[91]  Libo Yuan,et al.  Tapered fiber optical tweezers for microscopic particle trapping: fabrication and application. , 2006, Optics express.

[92]  Hiok Chai Quek,et al.  A novel cognitive interpretation of breast cancer thermography with complementary learning fuzzy neural memory structure , 2007, Expert Systems with Applications.

[93]  Christelle Monat,et al.  Integrated optofluidics: A new river of light , 2007 .

[94]  Francesco De Angelis,et al.  Miniaturized all-fibre probe for three-dimensional optical trapping and manipulation , 2007 .

[95]  A. deMello,et al.  Quantitative detection of protein expression in single cells using droplet microfluidics. , 2007, Chemical communications.

[96]  A. L. Stevens,et al.  A patterned anisotropic nanofluidic sieving structure for continuous-flow separation of DNA and proteins. , 2007, Nature nanotechnology.

[97]  Kort Travis,et al.  Fluorescence ratio thermometry in a microfluidic dual-beam laser trap. , 2007, Optics express.

[98]  W. Verboom,et al.  Optical sensing systems for microfluidic devices: a review. , 2007, Analytica chimica acta.

[99]  Robert Langer,et al.  Silk Fibroin Microfluidic Devices , 2007, Advanced materials.

[100]  Francisco J. Arregui,et al.  Minimizing the photobleaching of self-assembled multilayers for sensor applications , 2007 .

[101]  Stefan Schinkinger,et al.  Reconfigurable microfluidic integration of a dual-beam laser trap with biomedical applications , 2007, Biomedical microdevices.

[102]  M. Burns,et al.  Tuneable elastomeric nanochannels for nanofluidic manipulation. , 2007, Nature materials.

[103]  Luke P. Lee,et al.  An integrated optofluidic platform for Raman-activated cell sorting. , 2008, Lab on a chip.

[104]  Daniel Ahmed,et al.  Focusing microparticles in a microfluidic channel with standing surface acoustic waves (SSAW). , 2008, Lab on a chip.

[105]  Amadeu Griol,et al.  Label-free optical biosensing with slot-waveguides. , 2008, Optics letters.

[106]  Thomas N. Chiesl,et al.  Ultrafast DNA sequencing on a microchip by a hybrid separation mechanism that gives 600 bases in 6.5 minutes , 2008, Proceedings of the National Academy of Sciences.

[107]  Demetri Psaltis,et al.  Lensless high-resolution on-chip optofluidic microscopes for Caenorhabditis elegans and cell imaging , 2008, Proceedings of the National Academy of Sciences.

[108]  Holger Schmidt,et al.  Optofluidic waveguides: I. Concepts and implementations , 2008, Microfluidics and nanofluidics.

[109]  Luke P. Lee,et al.  Innovations in optical microfluidic technologies for point-of-care diagnostics. , 2008, Lab on a chip.

[110]  Yuze Sun,et al.  Sensitive optical biosensors for unlabeled targets: a review. , 2008, Analytica chimica acta.

[111]  M.C. Wu,et al.  Operational Regimes and Physics Present in Optoelectronic Tweezers , 2008, Journal of Microelectromechanical Systems.

[112]  V. Srinivasan,et al.  Heterogeneous immunoassays using magnetic beads on a digital microfluidic platform. , 2008, Lab on a chip.

[113]  A. Campagnoni,et al.  Cellular and molecular aspects of myelin protein gene expression , 2008, Molecular Neurobiology.

[114]  M. Daly,et al.  Genetic Mapping in Human Disease , 2008, Science.

[115]  J. Eijkel,et al.  Principles and applications of nanofluidic transport. , 2009, Nature nanotechnology.

[116]  R. Baets,et al.  Multiplexed Antibody Detection With an Array of Silicon-on-Insulator Microring Resonators , 2009, IEEE Photonics Journal.

[117]  M. C. Mancini,et al.  Bioimaging: second window for in vivo imaging. , 2009, Nature nanotechnology.

[118]  H. H. van den Vlekkert,et al.  Integration of femtosecond laser written optical waveguides in a lab-on-chip. , 2009, Lab on a chip.

[119]  G. Stemme,et al.  A packaged optical slot-waveguide ring resonator sensor array for multiplex label-free assays in labs-on-chips. , 2010, Lab on a chip.

[120]  A. Hawkins,et al.  Atomic spectroscopy and quantum optics in hollow‐core waveguides , 2010 .

[121]  Fook Siong Chau,et al.  Tunable liquid-filled lens integrated with aspherical surface for spherical aberration compensation. , 2010, Optics express.

[122]  Hongying Zhu,et al.  Holographic opto-fluidic microscopy , 2010, Optics express.

[123]  Eric Mazur,et al.  Femtosecond laser micromachining in transparent materials , 2008 .

[124]  Aydogan Ozcan,et al.  Color and monochrome lensless on-chip imaging of Caenorhabditis elegans over a wide field-of-view. , 2010, Lab on a chip.

[125]  R. Osellame,et al.  Optofluidic chip for single cell trapping and stretching fabricated by a femtosecond laser , 2010, Journal of biophotonics.

[126]  M Paturzo,et al.  Dispensing nano-pico droplets and liquid patterning by pyroelectrodynamic shooting. , 2010, Nature nanotechnology.

[127]  R. Osellame,et al.  Femtosecond laser fabricated monolithic chip for optical trapping and stretching of single cells. , 2010, Optics express.

[128]  Romeo Bernini,et al.  Liquid Core ARROW Waveguides by Atomic Layer Deposition , 2010, IEEE Photonics Technology Letters.

[129]  Derek Tseng,et al.  Multi-angle lensless digital holography for depth resolved imaging on a chip. , 2010, Optics express.

[130]  Aydogan Ozcan,et al.  High-throughput lens-free blood analysis on a chip. , 2010, Analytical chemistry.

[131]  Muzammil Iqbal,et al.  Label-Free Biosensor Arrays Based on Silicon Ring Resonators and High-Speed Optical Scanning Instrumentation , 2010, IEEE Journal of Selected Topics in Quantum Electronics.

[132]  Roberto Osellame,et al.  High‐resolution electrophoretic separation and integrated‐waveguide excitation of fluorescent DNA molecules in a lab on a chip , 2010, Electrophoresis.

[133]  Roberta Ramponi,et al.  Three-dimensional Mach-Zehnder interferometer in a microfluidic chip for spatially-resolved label-free detection. , 2010, Lab on a chip.

[134]  Miles J. Padgett,et al.  Optical tweezers : methods and applications , 2010 .

[135]  Kwanghun Chung,et al.  Microfluidics-enabled phenotyping, imaging, and screening of multicellular organisms. , 2010, Lab on a chip.

[136]  Roberto Osellame,et al.  Modulation-frequency encoded multi-color fluorescent DNA analysis in an optofluidic chip. , 2011, Lab on a chip.

[137]  M. Ritsch-Marte,et al.  Combined acoustic and optical trapping , 2011, Biomedical optics express.

[138]  W. Bishara,et al.  Lens-free optical tomographic microscope with a large imaging volume on a chip , 2011, Proceedings of the National Academy of Sciences.

[139]  Omer Oralkan,et al.  Capacitive micromachined ultrasonic transducers for medical imaging and therapy , 2011, Journal of micromechanics and microengineering : structures, devices, and systems.

[140]  Hongying Zhu,et al.  Optofluidic Tomography on a Chip. , 2011, Applied physics letters.

[141]  Ilaria Cristiani,et al.  Experimental study of the optical forces exerted by a Gaussian beam within the Rayleigh range , 2011 .

[142]  Markus Pollnau,et al.  All-numerical noise filtering of fluorescence signals for achieving ultra-low limit of detection in biomedical applications. , 2011, The Analyst.

[143]  Z. G. Li,et al.  Fast on-demand droplet fusion using transient cavitation bubbles. , 2011, Lab on a chip.

[144]  Marina Cretich,et al.  Biosticker : patterned microfluidic stickers for rapid integration with microarrays , 2011 .

[145]  Aydogan Ozcan,et al.  Field-portable lensfree tomographic microscope. , 2011, Lab on a Chip.

[146]  Thomas Laurell,et al.  Forthcoming Lab on a Chip tutorial series on acoustofluidics: acoustofluidics-exploiting ultrasonic standing wave forces and acoustic streaming in microfluidic systems for cell and particle manipulation. , 2011, Lab on a chip.

[147]  Xudong Fan,et al.  Optofluidic Microsystems for Chemical and Biological Analysis. , 2011, Nature photonics.

[148]  R. Osellame,et al.  Femtosecond laser microstructuring: an enabling tool for optofluidic lab‐on‐chips , 2011 .

[149]  Rong Fan,et al.  A Clinical Microchip for Evaluation of Single Immune Cells Reveals High Functional Heterogeneity in Phenotypically Similar T Cells Nih Public Access Author Manuscript Design Rationale and Detection Limit of the Scbc Online Methods Microchip Fabrication On-chip Secretion Profiling Supplementary Mater , 2022 .

[150]  Ting-Hsiang Wu,et al.  High-speed droplet generation on demand driven by pulse laser-induced cavitation. , 2011, Lab on a chip.

[151]  Matthew R Janes,et al.  Next-generation flow cytometry , 2011, Nature Biotechnology.

[152]  David Erickson,et al.  Nanomanipulation using near field photonics. , 2011, Lab on a chip.

[153]  Douglas A. Lauffenburger,et al.  Polyfunctional responses by human T cells result from sequential release of cytokines , 2011, Proceedings of the National Academy of Sciences.

[154]  A. Hawkins,et al.  The photonic integration of non-solid media using optofluidics , 2011 .

[155]  Aydogan Ozcan,et al.  Lensfree Optofluidic Microscopy and Tomography , 2011, Annals of Biomedical Engineering.

[156]  Henrik Bruus,et al.  Acoustofluidics 1: Governing equations in microfluidics. , 2011, Lab on a chip.

[157]  David Erickson,et al.  Optofluidic opportunities in global health, food, water and energy. , 2012, Nanoscale.

[158]  Robert Puers,et al.  Silicon photonic sensors incorporated in a digital microfluidic system , 2012, Analytical and Bioanalytical Chemistry.

[159]  Thomas Schwarz,et al.  Acoustofluidics 3: Continuum mechanics for ultrasonic particle manipulation. , 2012, Lab on a chip.

[160]  M. Romagnoli,et al.  An electrically pumped germanium laser. , 2012, Optics express.

[161]  Jochen Guck,et al.  Quantifying cellular differentiation by physical phenotype using digital holographic microscopy. , 2012, Integrative biology : quantitative biosciences from nano to macro.

[162]  Sylvain Ballandras,et al.  Integrated optofluidic index sensor based on self-trapped beams in LiNbO3 , 2012 .

[163]  Yeshaiahu Fainman,et al.  Optofluidic devices and applications in photonics, sensing and imaging. , 2012, Lab on a chip.

[164]  Ting-Wei Su,et al.  Lensfree On-Chip Microscopy and Tomography for Biomedical Applications , 2012, IEEE Journal of Selected Topics in Quantum Electronics.

[165]  R. Osellame,et al.  Integrated three-dimensional filter separates nanoscale from microscale elements in a microfluidic chip. , 2012, Lab on a chip.

[166]  Yizheng Zhu,et al.  Quantitative phase spectroscopy , 2012, Biomedical optics express.

[167]  D. Tsai,et al.  Optofluidic waveguide as a transformation optics device for lightwave bending and manipulation , 2012, Nature Communications.

[168]  Libo Yuan,et al.  A non-contact single optical fiber multi-optical tweezers probe: Design and fabrication , 2012 .

[169]  Yiin-Kuen Fuh,et al.  Characterizing aberration of a pressure-actuated tunable biconvex microlens with a simple spherically-corrected design , 2012 .

[170]  Dirk Möller,et al.  Acoustofluidics 4: Piezoelectricity and application in the excitation of acoustic fields for ultrasonic particle manipulation. , 2012, Lab on a chip.

[171]  Jochen Guck,et al.  Viscoelastic Properties of Differentiating Blood Cells Are Fate- and Function-Dependent , 2012, PloS one.

[172]  Aydogan Ozcan,et al.  High-throughput lensfree 3D tracking of human sperms reveals rare statistics of helical trajectories , 2012, Proceedings of the National Academy of Sciences.

[173]  Shima Fardad,et al.  Generalized Mie theory of optical forces , 2012 .

[174]  S. Herminghaus,et al.  Droplet based microfluidics , 2012, Reports on progress in physics. Physical Society.

[175]  Henrik Bruus,et al.  Acoustofluidics 2: perturbation theory and ultrasound resonance modes. , 2012, Lab on a chip.

[176]  Richard B. Fair,et al.  Droplet-Based Sensing: Optical Microresonator Sensors Embedded in Digital Electrowetting Microfluidics Systems , 2013, IEEE Sensors Journal.

[177]  F. Bragheri,et al.  Integrated microfluidic device for single-cell trapping and spectroscopy , 2013, Scientific Reports.

[178]  Derek Tseng,et al.  Fluorescent imaging of single nanoparticles and viruses on a smart phone. , 2013, ACS nano.

[179]  T. D. Yuzvinsky,et al.  Hybrid optofluidic integration. , 2013, Lab on a chip.

[180]  David Erickson,et al.  Redox mediated photocatalytic water-splitting in optofluidic microreactors. , 2013, Lab on a chip.

[181]  Dmitri O. Lapotko,et al.  Hemozoin-generated vapor nanobubbles for transdermal reagent- and needle-free detection of malaria , 2013, Proceedings of the National Academy of Sciences.

[182]  T. Haraldsson,et al.  Integration of microfluidics with grating coupled silicon photonic sensors by one-step combined photopatterning and molding of OSTE. , 2013, Optics express.

[183]  Lingshan Li,et al.  Optofluidic manipulation of Escherichia coli in a microfluidic channel using an abruptly tapered optical fiber , 2013 .

[184]  Jochen Guck,et al.  Mechanics Meets Medicine , 2013, Science Translational Medicine.

[185]  Paul J. A. Kenis,et al.  Electrochemical conversion of CO2 to useful chemicals: current status, remaining challenges, and future opportunities , 2013 .

[186]  Guoping Chen,et al.  Chemiluminescence detector based on a single planar transparent digital microfluidic device. , 2013, Lab on a chip.

[187]  Demetri Psaltis Optofluidics for energy applications , 2013 .

[188]  Roberto Osellame,et al.  Straightforward 3D hydrodynamic focusing in femtosecond laser fabricated microfluidic channels. , 2014, Lab on a chip.

[189]  D. Beebe,et al.  The present and future role of microfluidics in biomedical research , 2014, Nature.

[190]  James Friend,et al.  Surface Acoustic Wave Microfluidics , 2014 .

[191]  Gary D Bader,et al.  A draft map of the human proteome , 2014, Nature.

[192]  Li Jiang,et al.  Smartphone technology can be transformative to the deployment of lab-on-chip diagnostics. , 2014, Lab on a chip.

[193]  Alper Kiraz,et al.  In vitro and in vivo biolasing of fluorescent proteins suspended in liquid microdroplet cavities. , 2014, Lab on a chip.

[194]  Hu Tao,et al.  All-water-based electron-beam lithography using silk as a resist. , 2014, Nature nanotechnology.

[195]  Tao Dong,et al.  Recent Developments in Optical Detection Technologies in Lab-on-a-Chip Devices for Biosensing Applications , 2014, Sensors.

[196]  Frieder Mugele,et al.  Optofluidic lens with tunable focal length and asphericity , 2014, Scientific Reports.

[197]  Joseph M. Martel,et al.  Three-Dimensional Holographic Refractive-Index Measurement of Continuously Flowing Cells in a Microfluidic Channel. , 2014, Physical review applied.

[198]  Mats Johansson,et al.  Functional off‐stoichiometry thiol‐ene‐epoxy thermosets featuring temporally controlled curing stages via an UV/UV dual cure process , 2014 .

[199]  G. Whyte,et al.  Impact of heating on passive and active biomechanics of suspended cells , 2014, Interface Focus.

[200]  Peter Dubruel,et al.  Reaction tubes: A new platform for silicon nanophotonic ring resonator sensors , 2014 .

[201]  P. Ferraro,et al.  Imaging adherent cells in the microfluidic channel hidden by flowing RBCs as occluding objects by a holographic method. , 2014, Lab on a chip.

[202]  P. Herman,et al.  Chemical-assisted femtosecond laser writing of lab-in-fibers. , 2014, Lab on a chip.

[203]  Xudong Fan,et al.  The potential of optofluidic biolasers , 2014, Nature Methods.

[204]  P. Sarro,et al.  A hybrid silicon-PDMS optofluidic platform for sensing applications. , 2014, Biomedical optics express.

[205]  Aram J. Chung,et al.  Pulsed laser activated cell sorting with three dimensional sheathless inertial focusing , 2014, The 9th IEEE International Conference on Nano/Micro Engineered and Molecular Systems (NEMS).

[206]  Li Jiang,et al.  Solar thermal polymerase chain reaction for smartphone-assisted molecular diagnostics , 2014, Scientific Reports.

[207]  Demetri Psaltis,et al.  Design and cost considerations for practical solar-hydrogen generators , 2014 .

[208]  S. Nic Chormaic,et al.  Hollow core, whispering gallery resonator sensors , 2014, 1408.4338.

[209]  Alper Kiraz,et al.  Free-standing optofluidic waveguides formed on patterned superhydrophobic surfaces , 2014 .

[210]  Pao Tai Lin,et al.  Mid-infrared spectrometer using opto-nanofluidic slot-waveguide for label-free on-chip chemical sensing. , 2014, Nano letters.

[211]  Koji Sugioka,et al.  Femtosecond laser 3D micromachining: a powerful tool for the fabrication of microfluidic, optofluidic, and electrofluidic devices based on glass. , 2014, Lab on a chip.

[212]  David Erickson,et al.  A smartphone platform for the quantification of vitamin D levels. , 2014, Lab on a chip.

[213]  Oliver Otto,et al.  Dynamic operation of optical fibres beyond the single-mode regime facilitates the orientation of biological cells , 2014, Nature Communications.

[214]  Romeo Bernini,et al.  Optofluidic Approaches for Enhanced Microsensor Performances , 2014, Sensors.

[215]  M. A. Stott,et al.  Optofluidic analysis system for amplification-free, direct detection of Ebola infection , 2015, Scientific Reports.

[216]  Ilaria Cristiani,et al.  All-silica microfluidic optical stretcher with acoustophoretic prefocusing , 2015 .

[217]  David L. Kaplan,et al.  Laser-based three-dimensional multiscale micropatterning of biocompatible hydrogels for customized tissue engineering scaffolds , 2015, Proceedings of the National Academy of Sciences.

[218]  Jochen Guck,et al.  Refractive index measurements of single, spherical cells using digital holographic microscopy. , 2018, Methods in cell biology.

[219]  Neil Savage,et al.  Proteomics: High-protein research , 2015, Nature.

[220]  Gang-Ding Peng,et al.  Optofluidic tunable manipulation of microparticles by integrating graded-index fiber taper with a microcavity. , 2015, Optics express.

[221]  Demetri Psaltis,et al.  Two-photon imaging through a multimode fiber. , 2015, Optics express.

[222]  Lap Man Lee,et al.  A microfluidic pipette array for mechanophenotyping of cancer cells and mechanical gating of mechanosensitive channels. , 2015, Lab on a chip.

[223]  David Erickson,et al.  Integrated hollow fiber membranes for gas delivery into optical waveguide based photobioreactors. , 2015, Bioresource technology.

[224]  Pedro A. S. Jorge,et al.  New Trends on Optical Fiber Tweezers , 2015, Journal of Lightwave Technology.

[225]  Markku Kuittinen,et al.  Titanium dioxide slot waveguides for visible wavelengths. , 2015, Applied optics.

[226]  Martin Moskovits,et al.  Rapid identification by surface-enhanced Raman spectroscopy of cancer cells at low concentrations flowing in a microfluidic channel. , 2015, ACS nano.

[227]  S Xiong,et al.  Droplet generation via a single bubble transformation in a nanofluidic channel. , 2015, Lab on a chip.

[228]  Adam Wax,et al.  Influence of defocus on quantitative analysis of microscopic objects and individual cells with digital holography. , 2015, Biomedical optics express.

[229]  Koji Sugioka,et al.  In-channel integration of designable microoptical devices using flat scaffold-supported femtosecond-laser microfabrication for coupling-free optofluidic cell counting , 2015 .

[230]  Jason Riordon,et al.  Microalgae on display: a microfluidic pixel-based irradiance assay for photosynthetic growth. , 2015, Lab on a chip.

[231]  Hsin-Yun Hsu,et al.  AMPFLUID: Aggregation Magnified Post-Assay Fluorescence for Ultrasensitive Immunodetection on Digital Microfluidics , 2015, Proceedings of the IEEE.

[232]  G. Whyte,et al.  A monolithic glass chip for active single-cell sorting based on mechanical phenotyping. , 2015, Lab on a chip.

[233]  U. Keyser,et al.  Real-time deformability cytometry: on-the-fly cell mechanical phenotyping , 2015, Nature Methods.

[234]  David L Kaplan,et al.  Polyol-Silk Bioink Formulations as Two-Part Room-Temperature Curable Materials for 3D Printing. , 2015, ACS biomaterials science & engineering.

[235]  I Cristiani,et al.  An integrated optofluidic device for single-cell sorting driven by mechanical properties. , 2015, Lab on a chip.

[236]  M. A. Stott,et al.  Optofluidic wavelength division multiplexing for single-virus detection , 2015, Proceedings of the National Academy of Sciences.

[237]  Cornelia Denz,et al.  Optofluidic droplet router , 2015 .

[238]  Monika Ritsch-Marte,et al.  Acoustic force mapping in a hybrid acoustic-optical micromanipulation device supporting high resolution optical imaging† †Electronic supplementary information (ESI) available: Additional information about 1D model calculations for a piezoelectric transducer. See DOI: 10.1039/c6lc00182c Click here fo , 2016, Lab on a chip.

[239]  David Erickson,et al.  KS-Detect – Validation of Solar Thermal PCR for the Diagnosis of Kaposi’s Sarcoma Using Pseudo-Biopsy Samples , 2016, PloS one.

[240]  Holger Schmidt,et al.  Flexible optofluidic waveguide platform with multi-dimensional reconfigurability , 2016, Scientific Reports.

[241]  F. Mugele,et al.  Numerical simulation of astigmatic liquid lenses tuned by a stripe electrode. , 2016, Optics express.

[242]  G. Testa,et al.  Planar Silicon-Polydimethylsiloxane Optofluidic Ring Resonator Sensors , 2016, IEEE Photonics Technology Letters.

[243]  Andrea Bassi,et al.  Selective plane illumination microscopy on a chip. , 2016, Lab on a chip.

[244]  Jason Riordon,et al.  Breathable waveguides for combined light and CO2 delivery to microalgae. , 2016, Bioresource technology.

[245]  Junbo Wang,et al.  Development of Microfluidic Systems Enabling High-Throughput Single-Cell Protein Characterization , 2016, Sensors.

[246]  Manfred Hammer,et al.  Combined microfluidic-optical DNA analysis with single-base-pair sizing capability. , 2016, Biomedical optics express.

[247]  Pingan Zhu,et al.  Passive and active droplet generation with microfluidics: a review. , 2016, Lab on a chip.

[248]  Siwei Zhao,et al.  Bio-functionalized silk hydrogel microfluidic systems. , 2016, Biomaterials.

[249]  Joel Voldman,et al.  Iso-acoustic focusing of cells for size-insensitive acousto-mechanical phenotyping , 2016, Nature Communications.

[250]  David Sinton,et al.  Dual gradients of light intensity and nutrient concentration for full-factorial mapping of photosynthetic productivity. , 2016, Lab on a chip.

[251]  Lung-Ming Fu,et al.  Passive mixers in microfluidic systems: A review , 2016 .

[252]  Hans Zappe,et al.  Gravity-immune liquid-filled tunable lens with reduced spherical aberration. , 2016, Applied optics.

[253]  G. Stolovitzky,et al.  Nanoscale lateral displacement arrays for the separation of exosomes and colloids down to 20 nm. , 2016, Nature nanotechnology.

[254]  Jina Ko,et al.  Smartphone-enabled optofluidic exosome diagnostic for concussion recovery , 2016, Scientific Reports.

[255]  Tza-Huei Wang,et al.  Analysis of single nucleic acid molecules in micro- and nano-fluidics. , 2016, Lab on a chip.

[256]  David Sinton,et al.  Photon management for augmented photosynthesis , 2016, Nature Communications.

[257]  Haruyoshi Toyoda,et al.  Massively parallel femtosecond laser processing. , 2016, Optics express.

[258]  Jason Riordon,et al.  Self-assembled nanoparticle-stabilized photocatalytic reactors. , 2016, Nanoscale.

[259]  Jie-Long He,et al.  Opto-Microfluidic Immunosensors: From Colorimetric to Plasmonic , 2016, Micromachines.

[260]  J. Chi,et al.  Hemoglobin consumption by P. falciparum in individual erythrocytes imaged via quantitative phase spectroscopy , 2016, Scientific Reports.

[261]  An-Bang Wang,et al.  High-throughput on-line multi-detection for refractive index, velocity, size, and concentration measurements of micro-two-phase flow using optical microfibers , 2016 .

[262]  Noritada Kaji,et al.  Label-free detection of real-time DNA amplification using a nanofluidic diffraction grating , 2016, Scientific Reports.

[263]  Hans Zappe,et al.  Tubular astigmatism-tunable fluidic lens. , 2016, Optics letters.

[264]  Oleksandr Voznyy,et al.  Enhanced electrocatalytic CO2 reduction via field-induced reagent concentration , 2016, Nature.

[265]  J. Chi,et al.  Automated Detection of P. falciparum Using Machine Learning Algorithms with Quantitative Phase Images of Unstained Cells , 2016, PloS one.

[266]  Tal Carmon,et al.  Water-walled microfluidics for high-optical finesse cavities , 2016, Nature Communications.

[267]  Paolo Minzioni,et al.  A Comprehensive Review of Optical Stretcher for Cell Mechanical Characterization at Single-Cell Level , 2016, Micromachines.

[268]  David L Kaplan,et al.  Photocrosslinking of Silk Fibroin Using Riboflavin for Ocular Prostheses , 2016, Advanced materials.

[269]  Frieder Mugele,et al.  Recent Developments in Optofluidic Lens Technology , 2016, Micromachines.

[270]  Frieder Mugele,et al.  Numerical analysis of electrically tunable aspherical optofluidic lenses. , 2016, Optics express.

[271]  David Erickson,et al.  NutriPhone: a mobile platform for low-cost point-of-care quantification of vitamin B12 concentrations , 2016, Scientific Reports.

[272]  Yaprak Özbakır,et al.  Aerogels for Optofluidic Waveguides , 2017, Micromachines.

[273]  Paolo Minzioni,et al.  A review on optical actuators for microfluidic systems , 2017 .

[274]  Ilaria Cristiani,et al.  Corrigendum: A comprehensive strategy for the analysis of acoustic compressibility and optical deformability on single cells , 2017, Scientific reports.

[275]  David Sinton,et al.  Light dilution via wavelength management for efficient high‐density photobioreactors , 2017, Biotechnology and bioengineering.

[276]  Roberts Rimsa,et al.  Surface acoustic wave microfluidic pumps for on-chip diagnostics , 2018 .