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We discuss the design and performance of this device.
There is really not that much of a speed metric when determining the performance of this device.
The design features and in vitro and acute in vivo performance of this device are reported.
The performance of this device is investigated theoretically and experimentally in the present work.
The pertinent equations of motion are derived, and the analytical study is developed to analyze the control performance of this device.
We then theoretically consider the performance of this device architecture with high performance thermoelectric materials in the heat sink limited regime.
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Eventually, the characteristics, such as photocurrent, responsivity, and rectifying capability, and the performances of this device were also measured and analyzed.
It is deduced that this improved performance of the device was due to shift of crystal structure from defect-rich WZ phase to defect-free ZB phase for which mobility of 3500 cm2 V−1 s−1 is measured at room temperature [157].
To verify the performance of this control device, free and forced vibration experiments were performed on the platform for dynamic tests located at the University of Brasilia Structure Laboratory.
This enables the performance of the device to remain high.
Furthermore, the performance of this flexible device was obviously decreased under various bending states.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com