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1 structs were injected s.c. and transdermally photopolymerized.
2 ith only 2 min of light exposure required to photopolymerize an implant underneath human skin.
3 A vesicles were prepared by inkjet-printing, photopolymerized and characterized by dynamic light scat
4                             Blue phase I was photopolymerized and the remaining liquid crystal remove
5 (STR) analysis using a streptavidin-modified photopolymerized capture gel injector for microchip capi
6 odroplets and encapsulation of stem cells in photopolymerized coacervate hydrogels under physiologica
7                               By integrating photopolymerized cross-linked polyacrylamide gels within
8 rities with those obtained for the gas-phase photopolymerized (CS(2))(x) and the high-pressure-phase
9                                      We have photopolymerized diacetylene containing vesicles in the
10                       The EPA particles were photopolymerized directly on the SAW devices in the pres
11                     The capillaries with the photopolymerized frits had the best column-to-column rep
12 al types of frits, including sintered frits, photopolymerized frits, and frits made by sol-gel techno
13                                         Bulk photopolymerized hydrogels with uniform mechanical prope
14  model protein, was released for 1 week from photopolymerized hydrogels.
15                        A hydrogel microplug, photopolymerized in a microfluidic channel, with negativ
16                 The diacetylene units can be photopolymerized into polydiacetylenes that run coincide
17 report, we show that a novel capillary-based photopolymerized monolith offering unprecedented efficie
18            This in-column injector employs a photopolymerized oligonucleotide-modified acrylamide cap
19                                      A novel photopolymerized poly(acrylic acid) separator is demonst
20 ce biosensor is described that is based on a photopolymerized poly(ethylene glycol) (PEG) hydrogel in
21 Polymer microfluidic chips employing in situ photopolymerized polymethacrylate monoliths for high-per
22 y DNA extraction method is described using a photopolymerized silica-based monolithic column in a fus
23                                          The photopolymerized sol-gel (PSG) column shows reversed-pha
24 nt and sample stacking are investigated on a photopolymerized sol-gel (PSG) in capillary electrochrom
25 ration using capillary columns filled with a photopolymerized sol-gel (PSG).
26            Trypsin is covalently linked to a photopolymerized sol-gel monolith modified by incorporat
27 P) that is robust to a wide range of radical photopolymerizing systems, including thiol-ene and acryl
28             The micropatches are prepared by photopolymerizing the PEG precursor within the channel o
29 ls; the patterned monomer crystals were then photopolymerized to form patterned thermoresponsive film
30 ells were entrapped in hydrogel micropatches photopolymerized within microfluidic systems.

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