Thermoelectric figure of merit enhancement in dissipative superlattice structures
Pankaj Priyadarshi, Bhaskaran Muralidharan

TL;DR
This paper investigates how non-coherent quantum transport in dissipative superlattice structures can significantly enhance thermoelectric efficiency by reducing electronic thermal conductance and increasing the figure of merit, $zT$, through self-consistent modeling.
Contribution
It introduces a dissipative non-equilibrium Green's function approach to analyze thermoelectric performance in superlattices, revealing new pathways to optimize $zT$ via non-coherent scattering.
Findings
Maximum $zT$ of 18 achieved with non-coherent elastic scattering.
Seebeck coefficient up to 1000 μV/K observed.
Electronic thermal conductance drastically reduced with superlattice scaling.
Abstract
Utilizing the non-coherent quantum transport formalism, we investigate thermoelectric performance across dissipative superlattice configurations in the linear regime of operation. Using the {\it{dissipative}} non-equilibrium Green's function formalism coupled self-consistently with the Poisson's equation, we report an enhanced figure of merit in the multi-barrier device designs. The proposed enhancement, we show, is a result of a drastic reduction in the electronic thermal conductance triggered via non-coherent transport. We show that a maximum value of 18 can be achieved via the inclusion of non-coherent elastic scattering processes. There is also a reasonable enhancement in the Seebeck coefficient, with a maximum of , which we attribute to an enhancement in electronic filtering arising from the non-coherent transport. Distinctly the thermal conduction is…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
