Results 201 to 210 of about 49,881 (259)
Continuous wet‐spinning of PANI with TeNWs yields a multifunctional microfiber. Oriented TeNWs impose chain alignment and enhance π‐electron delocalization, boosting the Seebeck coefficient to 59.9 µV K−1 for passive temperature sensing (1 K detection limit), while achieving high pH sensitivity (59.25 mV pH−1) and rapid NH3 response (0.96 s).
Dongmei Xie +10 more
wiley +1 more source
Rapid prototyping of thermoplastic microfluidic devices via SLA 3D printing. [PDF]
Khoo H +3 more
europepmc +1 more source
BSEO-Semiautomatic Method for Determination of Oil Recovery with Nanofluids in Microfluidic Devices. [PDF]
Macote-Yparraguirre E +4 more
europepmc +1 more source
Inkjet-printed electronics for rapid and low-cost prototyping of digital microfluidic devices using an off-the-shelf printer. [PDF]
Azad BKD +8 more
europepmc +1 more source
Magnetic Stirring Device for Limiting the Sedimentation of Cells inside Microfluidic Devices. [PDF]
Cremaschini S +10 more
europepmc +1 more source
3D Printed Microfluidic Devices for Integrated Immunoaffinity Extraction, Solid-Phase Extraction, and Fluorescent Labeling of Preterm Birth Biomarkers. [PDF]
Holladay JD +5 more
europepmc +1 more source
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Talanta, 2002
Since the introduction of lab-on-a-chip devices in the early 1990s, glass has been the dominant substrate material for their fabrication (J. Chromatogr. 593 (1992) 253; Science 261 (1993) 895). This is primarily driven by the fact that fabrication methods were well established by the semiconductor industry, and surface properties and derivatization ...
Holger, Becker, Laurie E, Locascio
openaire +2 more sources
Since the introduction of lab-on-a-chip devices in the early 1990s, glass has been the dominant substrate material for their fabrication (J. Chromatogr. 593 (1992) 253; Science 261 (1993) 895). This is primarily driven by the fact that fabrication methods were well established by the semiconductor industry, and surface properties and derivatization ...
Holger, Becker, Laurie E, Locascio
openaire +2 more sources
Bioanalysis in microfluidic devices
Journal of Chromatography A, 2002Microfabricated bioanalytical devices (also referred to as laboratory-on-a-chip or micro-TAS) offer highly efficient platforms for simultaneous analysis of a large number of biologically important molecules, possessing great potential for genome, proteome and metabolome studies.
Julia, Khandurina, András, Guttman
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Commercialization of microfluidic devices
Trends in Biotechnology, 2014Microfluidic devices offer automation and high-throughput screening, and operate at low volumes of consumables. Although microfluidics has the potential to reduce turnaround times and costs for analytical devices, particularly in medical, veterinary, and environmental sciences, this enabling technology has had limited diffusion into consumer products ...
Lisa R, Volpatti, Ali K, Yetisen
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