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      A review on the enhancement of figure of merit from bulk to nano-thermoelectric materials

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      Nano Energy
      Elsevier BV

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          Complex thermoelectric materials.

          Thermoelectric materials, which can generate electricity from waste heat or be used as solid-state Peltier coolers, could play an important role in a global sustainable energy solution. Such a development is contingent on identifying materials with higher thermoelectric efficiency than available at present, which is a challenge owing to the conflicting combination of material traits that are required. Nevertheless, because of modern synthesis and characterization techniques, particularly for nanoscale materials, a new era of complex thermoelectric materials is approaching. We review recent advances in the field, highlighting the strategies used to improve the thermopower and reduce the thermal conductivity.
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            Quantum dot superlattice thermoelectric materials and devices.

            PbSeTe-based quantum dot superlattice structures grown by molecular beam epitaxy have been investigated for applications in thermoelectrics. We demonstrate improved cooling values relative to the conventional bulk (Bi,Sb)2(Se,Te)3 thermoelectric materials using a n-type film in a one-leg thermoelectric device test setup, which cooled the cold junction 43.7 K below the room temperature hot junction temperature of 299.7 K. The typical device consists of a substrate-free, bulk-like (typically 0.1 millimeter in thickness, 10 millimeters in width, and 5 millimeters in length) slab of nanostructured PbSeTe/PbTe as the n-type leg and a metal wire as the p-type leg.
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              Perspectives on thermoelectrics: from fundamentals to device applications

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                Author and article information

                Journal
                Nano Energy
                Nano Energy
                Elsevier BV
                22112855
                March 2013
                March 2013
                : 2
                : 2
                : 190-212
                Article
                10.1016/j.nanoen.2012.10.005
                72770287-174a-4aef-a2b2-200f27dbc519
                © 2013
                History

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