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The investigated device belongs to the passive energy dissipation systems, as it doesn't require external power to generate system control forces.
We investigated device design parameters for low-bandgap conjugated organic polymer blends of poly[2,6- 4,4-bis- 2-ethylhexyl -4H-cyclopenta[2,1-b 3,4-b′]dithiophene -alt-4,7- 2,1,3-benzothiadiazole)]: poly[2,6- 4,4-bis- 2-ethylhexyl -4H-cyclopenta[2,1-b 3,4-b′]dithiophene -alt-4,7- 2,1,3-benzothiadiazolents in poly[2,6- 4,4-bis- 2-ethylhexyl -4H-cyclopenta[2,1-b 3,4-b′]dithiophene -alt-4,7- 2,1,3-benzothiadiazole
Following our data, we cannot recommend a clinical use of the investigated device.
The structure of the investigated device, shown in Figure 1a, contains 11 layers of 6 nm-thick Ga0.35In0.65N0.02As0.08 quantum wells separated by 10 nm GaAs barriers.
Figures 5 and 6 show I V curves of the investigated device at the several front gate voltages (VFG = − 1 V, − 5 V) measured in an aqueous solution with pH = 6.2, 7, and 8.3.
The peak output power represents the maximum peak output of the investigated device classes.
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All the investigated devices displayed good rectifying properties, ranging from 102 to 104.
Among investigated devices with GO interlayer the best value of power conversion efficiency (PCE = 0.47%) was found for the device ITO\PEDOT PSS\P3HT PCBM\GO\Al.
The investigated devices were fabricated by utilizing mixed perovskites containing formamidinium (FA) and methylammonium (MA) cations, in a one step solution-process method through a solvent engineering approach.
In order to further support our results we investigated devices with different lengths in the linear and saturation region of operation.
The capacitance increased by forty-fold more than its margin which is the greatest capacitance response ever recorded compared to previously investigated devices.
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