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The resultant devices also exhibited good electrochemical stability under bending conditions, demonstrating superior flexibility.
The resultant devices can be attached to the surfaces of solids.
Furthermore, if the transformation is conformal, the resultant devices can be made with ordinary isotropic materials instead of exotic anisotropic metamaterials.
It enhances light harvesting to obtain higher attainable photocurrents and photovoltage in the resultant devices, achieving a decent power conversion efficiency (PCE) over 19% consequently.
When integrating differently functionalized Si NWs in functional devices such as field effect transistors (FETs) and solar cells, the physical properties of the resultant devices vary.
The resultant devices based on the one-step process exhibited a favourable 3.56% power conversion efficiency (PCE) after a simple UV light treatment, close to the PCE of a conventionally fabricated reference device with a multilayer architecture.
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The majority of rGO sheets were cracked between the electrode gaps, resulting in a rapid change of resistance of the resultant device and consequently leading to a lower response value.
The resultant device was composed of silver/spiro-OMeTAD/MAPbI3/TiO2 mesoporous layer/TiO2 compact layer/FTO/glass.
However, when the assembly concentration of GO solution decreased to 0.25 mg/mL, the resistance of the resultant device increased greatly.
The introduction of alkyl chains on oligothiophene π-bridge is found to significantly improve the open-circuit voltage of the resultant device.
The resultant device delivers a high energy density of 64.92 Wh/kg at a power density of 276.23 W/kg, as well as considerable flexibility.
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