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1 ron and 4.8 mL of water are pumped per joule at a flow rate of 0.13 mL min(-1) V(-1) cm(-2), and a fl
2 mple were passed through a flow-through cell at a flow rate of 0.2 mL/min containing a membrane 20 mu
3 g at a flow rate of 2.82 L/min and 65 microg at a flow rate of 0.28 L/min.
4 t methanol/water/toluene mobile phase system at a flow rate of 0.5 mL min(-1).
5  ammonium formate in water and acetonitrile, at a flow rate of 0.5 mL/min.
6                               Water infusion at a flow-rate of 0.4 mL/h yielded not only an average 1
7 0 aM with response times of less than 15 min at a flow rate of 1 microL/min using 50 microL of target
8 baseline samples were collected every 15 min at a flow rate of 1 microL/min.
9  to mg/mL can be loaded into the microdevice at a flow rate of 1 mL/h and residence time of approxima
10 etic acid) and solvent B (100% acetonitrile) at a flow rate of 1 mL/min.
11 otassium (50mM) containing Tyrode's solution at a flow rate of 1 nL/s.
12 d perfused with mock CSF with 3% Dextran 500 at a flow rate of 1.0 muL/min and 20 min sample collecti
13 ase of water:acetonitrile:methanol (83:6:11) at a flow rate of 1.4 mL min(-1), the catechins and caff
14 n i.d. vs. 0.8 +/- 1.5% with L-NAME, n = 12, at a flow rate of 1.46 microliters s-1; P < 0.02), but n
15  aqueous solution at pH 1.6 and acetonitrile at a flow rate of 1.5 mL/min and detection wavelength at
16 ), rapid response (up to approximately 60 ms at a flow rate of 1.5 mL/min), quick warm-up time ( appr
17 ase was acetonitrile-water (50:50) delivered at a flow rate of 1.5 ml/min.
18 g mobile phase (methanol:water, 92:8, (v/v)) at a flow rate of 1.5mL/min.
19  methanol, methyl-tert-butyl ether and water at a flow-rate of 1 mL/min.
20                                              At a flow rate of 100 muL/min, breast cancer cells (MCF7
21                                       Argon, at a flow rate of 125 mL min(-1), was the best DBD disch
22                            At 150 degrees C, at a flow rate of 15 mL/min with a 5 cm by 4.6 mm (i.d.)
23 ace were acquired using the 50-microm column at a flow rate of 150 to 200 nL/min.
24 de (0-30% methanol in 15 min, 2% change/min) at a flow rate of 2 mL/min and cyanopropyl silica column
25 he improved sensor increases capture by 100% at a flow rate of 2 muL/min, as characterized through mi
26 nd water containing 0.1% diethylamine (v/v), at a flow rate of 2.5 ml/min, a column temperature of 22
27 e retained by the CA filter were 4.25 microg at a flow rate of 2.82 L/min and 65 microg at a flow rat
28 ic pH into an electrospray mass spectrometer at a flow rate of 20-40 nl/min using an ultra-low flow s
29 ted using a C18 column with gradient elution at a flow rate of 200 microL/min without postcolumn spli
30 e preconcentration (onto Molecular Sieve 5A) at a flow rate of 200 mL min(-1).
31 at +0.4 V vs gold pseudoreference electrode, at a flow rate of 200 muL min(-1).
32 d capillary analytical column was maintained at a flow rate of 3.5 microL/min.
33 e C18 column with dimensions of 150 x 1.0 mm at a flow rate of 30 microL/min was utilized.
34 -microm particle size) with gradient elution at a flow rate of 300 microL/min.
35            Continuous HF was used in 8 lambs at a flow rate of 300 mL/kg per hour throughout CPB, sim
36                                              At a flow rate of 5 microliter min-1, arteries from the
37 1-butanol in 10 mM sodium-phosphate (pH 7.2) at a flow rate of 5 mL/min.
38 del analytes from 5-microm-diameter emitters at a flow rate of 5 nL/min with a high degree of interem
39 on of 37 dropped to 4 for the same electrode at a flow rate of 500 nL/s.
40                         Nebulizer efficiency at a flow rate of 6 L/min was five times lower with He-O
41                                       Argon, at a flow rate of 60 mL min(-1), was the best DBD discha
42 tion through the 1.2-cm column was performed at a flow rate of 80 nL/min.
43 lume, and robustness, the device can be used at a flow rate of only 200 nL/min, an order of magnitude

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