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In the experiments, these oscillating potentials were generated at low voltage using a set of arbitrary waveform generators before amplification by a factor of 50 to amplitudes of up to V 0=120 V.
Calibration curves for RK-33 were computed using the area ratio by using linear regression with a 1/x weighting function over the range of 5 1,000 ng/ml with dilutions of up to 1 100 (v:v).
A total of 119 (88%) of patients had a maximal threshold rise of ≤0.5 V at any timepoint between 6 and 12 months, and 127 (94%) with increases of ≤1.0 V. Thus, eight (6%) patients had increases in LV threshold of >1.0 V, with values of up to 5 V (in one patient).
As can be appreciated from Figure 2, increase in threshold at any timepoint between 1 and 6 months was relatively low in the majority of patients, with 171 (82%) patients showing increases of ≤0.5 V, and 189 (91%) increases of ≤1.0 V. Thus, 19 (9%) patients had increases in LV threshold of >1.0 V, with values of up to 4 V (in 2 patients).
The devices exhibited mobility and on/off current ratio of up to 9 cm2 (Vs)−1 and 105, respectively.
Using ultrasonic spray pyrolysis, Petti et al. [11] fabricated TFTs with indium oxide as the conducting channel with a mobility of up to 16 cm2 (Vs)−1.
They showed a rather high breakthrough voltage of up to 20 V.
Electric fields of up to 370 V cm−1 were applied across the separation chamber.
Open circuit voltages of up to 1.06 V and power of 150 mW cm−2 are achieved at 550 °C.
The micromotors were tested under open-loop control at an applied voltage of up to 650 V.
However, a short-circuit capability of up to 520 V can be achieved, regarding the design of the gate-drive circuit.
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