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The motional resistance of the new device is characterized analytically and validated using 3D-multiphysics simulation.
The device is characterized and numerically analyzed using the finite-element-method at the wavelengths of 1.55 μm.
The two-pump device is characterized by four parametric bands that can be used for flexible, unimpaired signal conversion.
The device is characterized at room temperature through the measurements of integrated electroluminescence (EL), light intensity-voltage characteristics, spectral photoluminescence (PL), EL, and electro-photoluminescence (EPL) techniques.
The proposed device is characterized by a portable low-power, low-cost modular architecture that provides designers with a realistic, flexible, and repeatable testing solution.
Typical measurements show that the step response of the device is characterized by three distinct non-linear regimes (double-sided impact, single-sided impact, and no-impact).
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The device was characterized and can potentially be used as a nanosensor.
The device was characterized theoretically, modeled using finite element analysis and tested experimentally.
Electrochemical studies of ASSTFS device was characterized by cyclic voltammetry, charge discharge and impedance techniques.
Before going for TEM observation, the memory device was characterized with a program/erase of 4,000 cycles.
Before performing the TEM measurement, the memory device was characterized with 6,000 program/erase (P/E) cycles.
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