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This study is aimed at enhancing the junction performance by way of a modified "rooting" technique interface control.
In this process, the interface between CNTs and substrate has been tailored with different metals in an attempt to improve the CNT substrate junction performance.
The correlation between the p-n junction performance and the microstructure of the films is discussed, and the rectifying property became stronger as the fraction of Ge in the Si1−xGex films increased.
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Some key points in this structure are crucial to the junctions' performance, including properties of carbon materials (sheet resistance, light transmissivity, etc)., substrate wafer (resistance, energy band gap, light transmissivity, etc)., and their interface (contact state, thickness).
They show that inconsistency between the opinions of the self and another impedes lie detection and that electrical stimulation of the temporoparietal junction improves performance in these opinion-inconsistent situations.
By adopting optimized bandgaps or more junctions, the performance of the proposed structure is expected to be further improved.
The 1-D nanostructure also promotes traditional p-n junction solar cell performance.
As the heat transfer capability at the cold junction increases, the performance reduces, first sharply and then leveling off.
This work provided a new strategy to improve the junction quality and performance of nanostructured Si/PEDOT PSS HSCs.
Essential junction parameters and performance of heterojunction established a photovoltaic behavior with an open circuit voltage (Voc) 0.382 V, short circuit photocurrent (ISC) 0.72 mA and power conversion efficiency of 4.65%.
Photodetectors based on n+/p junction demonstrated high performances on both NIR absorption and photoresponse.
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