Search alternatives:
μ decrease » _ decreased (Expand Search), _ decreases (Expand Search), a decreased (Expand Search)
we decrease » nn decrease (Expand Search), mean decrease (Expand Search), teer decrease (Expand Search)
a decrease » _ decreased (Expand Search), _ decreases (Expand Search)
_ decrease » _ decreased (Expand Search)
200 μ » 100 μ (Expand Search), 20 μ (Expand Search)
μ decrease » _ decreased (Expand Search), _ decreases (Expand Search), a decreased (Expand Search)
we decrease » nn decrease (Expand Search), mean decrease (Expand Search), teer decrease (Expand Search)
a decrease » _ decreased (Expand Search), _ decreases (Expand Search)
_ decrease » _ decreased (Expand Search)
200 μ » 100 μ (Expand Search), 20 μ (Expand Search)
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Zwitterion-Functionalized Cuprous Oxide Nanoparticles for Highly Specific and Enzymeless Electrochemical Creatinine Biosensing in Human Serum
Published 2023“…A linear response to creatinine concentration from 10 to 200 μM (<i>R</i><sup>2</sup> = 0.9876 and LOD = 5.0 μM) was observed, which covers the entire range of physiological creatinine in human serum. …”
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Frictional Effects on RNA Folding: Speed Limit and Kramers Turnover
Published 2018“…The corresponding results for BWYV PK serve as predictions. We calculated the folding rates (<i>k</i><sub>F</sub>) from more than 100 folding trajectories for each value of the solvent viscosity (η) at a fixed salt concentration of 200 mM. …”
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Combining Ultrasound and Capillary-Embedded T‑Junction Microfluidic Devices to Scale Up the Production of Narrow-Sized Microbubbles through Acoustic Fragmentation
Published 2022“…When stored in a closed environment, the microbubbles were observed to be stable for up to 30 days, with the concentration of the microbubble suspension decreasing from ∼2.81 × 10<sup>9</sup>/mL to ∼2.3 × 10<sup>6</sup>/mL and the size changing from 1.73 ± 0.2 to 1.45 ± 0.3 μm at the end of 30 days. …”
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Combining Ultrasound and Capillary-Embedded T‑Junction Microfluidic Devices to Scale Up the Production of Narrow-Sized Microbubbles through Acoustic Fragmentation
Published 2022“…When stored in a closed environment, the microbubbles were observed to be stable for up to 30 days, with the concentration of the microbubble suspension decreasing from ∼2.81 × 10<sup>9</sup>/mL to ∼2.3 × 10<sup>6</sup>/mL and the size changing from 1.73 ± 0.2 to 1.45 ± 0.3 μm at the end of 30 days. …”
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Combining Ultrasound and Capillary-Embedded T‑Junction Microfluidic Devices to Scale Up the Production of Narrow-Sized Microbubbles through Acoustic Fragmentation
Published 2022“…When stored in a closed environment, the microbubbles were observed to be stable for up to 30 days, with the concentration of the microbubble suspension decreasing from ∼2.81 × 10<sup>9</sup>/mL to ∼2.3 × 10<sup>6</sup>/mL and the size changing from 1.73 ± 0.2 to 1.45 ± 0.3 μm at the end of 30 days. …”
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Combining Ultrasound and Capillary-Embedded T‑Junction Microfluidic Devices to Scale Up the Production of Narrow-Sized Microbubbles through Acoustic Fragmentation
Published 2022“…When stored in a closed environment, the microbubbles were observed to be stable for up to 30 days, with the concentration of the microbubble suspension decreasing from ∼2.81 × 10<sup>9</sup>/mL to ∼2.3 × 10<sup>6</sup>/mL and the size changing from 1.73 ± 0.2 to 1.45 ± 0.3 μm at the end of 30 days. …”
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Combining Ultrasound and Capillary-Embedded T‑Junction Microfluidic Devices to Scale Up the Production of Narrow-Sized Microbubbles through Acoustic Fragmentation
Published 2022“…When stored in a closed environment, the microbubbles were observed to be stable for up to 30 days, with the concentration of the microbubble suspension decreasing from ∼2.81 × 10<sup>9</sup>/mL to ∼2.3 × 10<sup>6</sup>/mL and the size changing from 1.73 ± 0.2 to 1.45 ± 0.3 μm at the end of 30 days. …”
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Combining Ultrasound and Capillary-Embedded T‑Junction Microfluidic Devices to Scale Up the Production of Narrow-Sized Microbubbles through Acoustic Fragmentation
Published 2022“…When stored in a closed environment, the microbubbles were observed to be stable for up to 30 days, with the concentration of the microbubble suspension decreasing from ∼2.81 × 10<sup>9</sup>/mL to ∼2.3 × 10<sup>6</sup>/mL and the size changing from 1.73 ± 0.2 to 1.45 ± 0.3 μm at the end of 30 days. …”
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Combining Ultrasound and Capillary-Embedded T‑Junction Microfluidic Devices to Scale Up the Production of Narrow-Sized Microbubbles through Acoustic Fragmentation
Published 2022“…When stored in a closed environment, the microbubbles were observed to be stable for up to 30 days, with the concentration of the microbubble suspension decreasing from ∼2.81 × 10<sup>9</sup>/mL to ∼2.3 × 10<sup>6</sup>/mL and the size changing from 1.73 ± 0.2 to 1.45 ± 0.3 μm at the end of 30 days. …”
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Combining Ultrasound and Capillary-Embedded T‑Junction Microfluidic Devices to Scale Up the Production of Narrow-Sized Microbubbles through Acoustic Fragmentation
Published 2022“…When stored in a closed environment, the microbubbles were observed to be stable for up to 30 days, with the concentration of the microbubble suspension decreasing from ∼2.81 × 10<sup>9</sup>/mL to ∼2.3 × 10<sup>6</sup>/mL and the size changing from 1.73 ± 0.2 to 1.45 ± 0.3 μm at the end of 30 days. …”
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Combining Ultrasound and Capillary-Embedded T‑Junction Microfluidic Devices to Scale Up the Production of Narrow-Sized Microbubbles through Acoustic Fragmentation
Published 2022“…When stored in a closed environment, the microbubbles were observed to be stable for up to 30 days, with the concentration of the microbubble suspension decreasing from ∼2.81 × 10<sup>9</sup>/mL to ∼2.3 × 10<sup>6</sup>/mL and the size changing from 1.73 ± 0.2 to 1.45 ± 0.3 μm at the end of 30 days. …”