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For each case, a parametric analysis is conducted to identify the designs that yield maximum thermoelectric efficiency and power output.
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The measured maximum electricity power is 12.9 W, and the thermoelectric efficiency lies between 2.4% and 2.8% when the temperature difference ranges from 119 °C to 147 °C.
In nanostructures, quantum confinement of electrons and phonons favours their thermoelectric transport properties, resulting in increased thermoelectric efficiency [1].
Width-modulated nanowires have been proposed for thermoelectric efficiency enhancement.
It is known that the thermoelectric efficiency of nanowires increases when their diameter decreases.
The best thermoelectric efficiency has been obtained for a Ca content of x=0.5.
More research is needed in order to increases the thermoelectric efficiency.
The thermoelectric efficiency is measured by the dimensionless figure of merit: (5).
High thermoelectric efficiency occurs for high electrical conductivity and low thermal conductivity.
The coefficient α is a measure of the effect of phonon conduction on the thermoelectric efficiency.
The thermoelectric measurement of the BiSe-2 sample reveals the promising thermoelectric property of the as-prepared Bi2Se3 nanostructures at room temperature, but the optimization of the synthesis condition is needed to further enhance its thermoelectric efficiency.
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