An inkjet printed, roll-coated digital microfluidic device for inexpensive, miniaturized diagnostic assays.
暂无分享,去创建一个
Aaron R Wheeler | Ryan Fobel | Alphonsus H C Ng | Christopher Dixon | Mark B Miltenburg | A. Wheeler | Christopher Dixon | R. Fobel | Alphonsus H. C. Ng | Mark B. Miltenburg
[1] K. Wood,et al. Duration of hypotension before initiation of effective antimicrobial therapy is the critical determinant of survival in human septic shock* , 2006, Critical care medicine.
[2] A. Liu,et al. Study of cyanoethyl pullulan as insulator for electrowetting , 2014 .
[3] G. Whitesides,et al. Simple telemedicine for developing regions: camera phones and paper-based microfluidic devices for real-time, off-site diagnosis. , 2008, Analytical chemistry.
[4] Aaron R Wheeler,et al. Digital microfluidics with impedance sensing for integrated cell culture and analysis. , 2013, Biosensors & bioelectronics.
[5] R. Cooks,et al. Analysis on the go: quantitation of drugs of abuse in dried urine with digital microfluidics and miniature mass spectrometry. , 2014, Analytical chemistry.
[6] S. Lawn,et al. Diagnostic accuracy of a low-cost, urine antigen, point-of-care screening assay for HIV-associated pulmonary tuberculosis before antiretroviral therapy: a descriptive study , 2012, The Lancet. Infectious diseases.
[7] Ari Hokkanen,et al. Disposable roll-to-roll hot embossed electrophoresis chip for detection of antibiotic resistance gene mecA in bacteria. , 2012, Lab on a chip.
[8] Arash Abadian,et al. Paper-based digital microfluidics , 2014 .
[9] S. Ramachandran,et al. A low cost point-of-care viscous sample preparation device for molecular diagnosis in the developing world; an example of microfluidic origami. , 2012, Lab on a chip.
[10] Aaron R. Wheeler,et al. Low-cost, rapid-prototyping of digital microfluidics devices , 2008 .
[11] Michael D M Dryden,et al. Combinatorial Synthesis of Peptidomimetics Using Digital Microfluidics , 2012, Journal of Flow Chemistry.
[12] Junfei Tian,et al. Paper-based microfluidic devices by plasma treatment. , 2008, Analytical chemistry.
[13] A. Wheeler,et al. Digital microfluidic platform for the detection of rubella infection and immunity: a proof of concept. , 2015, Clinical chemistry.
[14] P. Yager,et al. Controlled reagent transport in disposable 2D paper networks. , 2010, Lab on a chip.
[15] W. Bellini,et al. Improving global virologic surveillance for measles and rubella. , 2011, The Journal of infectious diseases.
[16] S. Cho,et al. Low voltage electrowetting-on-dielectric , 2002 .
[17] Mark J Siedner,et al. Point-of-care diagnosis and prognostication of cryptococcal meningitis with the cryptococcal antigen lateral flow assay on cerebrospinal fluid. , 2014, Clinical infectious diseases : an official publication of the Infectious Diseases Society of America.
[18] H. Moon,et al. On-chip characterization of cryoprotective agent mixtures using an EWOD-based digital microfluidic device. , 2011, Lab on a chip.
[19] Jooho Moon,et al. All-Ink-Jet Printed Flexible Organic Thin-Film Transistors on Plastic Substrates , 2009 .
[20] G. Whitesides,et al. Three-dimensional microfluidic devices fabricated in layered paper and tape , 2008, Proceedings of the National Academy of Sciences.
[21] Jonathan Stringer,et al. Limits to feature size and resolution in ink jet printing , 2009 .
[22] A. Wheeler,et al. Paper Microfluidics Goes Digital , 2014, Advanced materials.
[23] Lyle E. Yarnell,et al. Automated digital microfluidic platform for magnetic-particle-based immunoassays with optimization by design of experiments. , 2013, Analytical chemistry.
[24] L P Skendzel,et al. Rubella immunity. Defining the level of protective antibody. , 1996, American journal of clinical pathology.
[25] Frederik C. Krebs,et al. Ambient roll-to-roll fabrication of flexible solar cells based on small molecules , 2013 .
[26] A. Wheeler,et al. Synchronized synthesis of peptide-based macrocycles by digital microfluidics. , 2010, Angewandte Chemie.
[27] Frederik C. Krebs,et al. Roll and roll-to-roll process scaling through development of a compact flexo unit for printing of back electrodes , 2015 .
[28] Irwin A. Eydelnant,et al. Microgels on-demand , 2014, Nature Communications.
[29] Xu Li,et al. A perspective on paper-based microfluidics: Current status and future trends. , 2012, Biomicrofluidics.
[30] Robert P. Luoma,et al. Digital microfluidic magnetic separation for particle-based immunoassays. , 2012, Analytical chemistry.
[31] Aaron R Wheeler,et al. Microcontact printing-based fabrication of digital microfluidic devices. , 2006, Analytical chemistry.
[32] J. Andrus,et al. Enhanced laboratory surveillance for the elimination of rubella and congenital rubella syndrome in the Americas. , 2011, The Journal of infectious diseases.
[33] G. Whitesides,et al. Diagnostics for the developing world: microfluidic paper-based analytical devices. , 2010, Analytical chemistry.
[34] Aaron R. Wheeler,et al. Digital microfluidic immunocytochemistry in single cells , 2015, Nature Communications.
[35] Suren A. Gevorgyan,et al. Scalable, ambient atmosphere roll-to-roll manufacture of encapsulated large area, flexible organic tandem solar cell modules , 2014 .
[36] Paul Yager,et al. Controlled release of dry reagents in porous media for tunable temporal and spatial distribution upon rehydration. , 2012, Lab on a chip.
[37] Kristen L. Helton,et al. Microfluidic Overview of Global Health Issues Microfluidic Diagnostic Technologies for Global Public Health , 2006 .
[38] Saman Sadeghi,et al. Micro-chemical synthesis of molecular probes on an electronic microfluidic device , 2011, Proceedings of the National Academy of Sciences.
[39] K. Shin,et al. Active Digital Microfluidic Paper Chips with Inkjet‐Printed Patterned Electrodes , 2014, Advanced materials.
[40] R. Fair,et al. Droplet-based microfluidic lab-on-a-chip for glucose detection , 2004 .
[41] Mikkel Jørgensen,et al. Silver front electrode grids for ITO-free all printed polymer solar cells with embedded and raised topographies, prepared by thermal imprint, flexographic and inkjet roll-to-roll processes. , 2012, Nanoscale.
[42] Y. K. Cheung,et al. 1 Supplementary Information for : Microfluidics-based diagnostics of infectious diseases in the developing world , 2011 .
[43] A. Wheeler,et al. DropBot: An open-source digital microfluidic control system with precise control of electrostatic driving force and instantaneous drop velocity measurement , 2013 .
[44] M MudrikJared,et al. Strong and small: strong cation-exchange solid-phase extractions using porous polymer monoliths on a digital microfluidic platform , 2014 .
[45] Hyunchul Jung,et al. Studies on Inkjet-Printed Conducting Lines for Electronic Devices , 2007 .
[46] Aaron R Wheeler,et al. A digital microfluidic device with integrated nanostructured microelectrodes for electrochemical immunoassays. , 2015, Lab on a chip.
[47] Klaus Dietz,et al. Performance of the Elecsys Rubella IgG Assay in the Diagnostic Laboratory Setting for Assessment of Immune Status , 2013, Clinical and Vaccine Immunology.
[48] Mikkel Jørgensen,et al. Roll‐to‐Roll Inkjet Printing and Photonic Sintering of Electrodes for ITO Free Polymer Solar Cell Modules and Facile Product Integration , 2013 .
[49] Jeffrey Collins,et al. High yield and high specific activity synthesis of [18F]fallypride in a batch microfluidic reactor for micro-PET imaging. , 2014, Chemical communications.