Related Experiment Video
Updated: Jun 8, 2026

Asymmetric Thermoelectrochemical Cell for Harvesting Low-grade Heat under Isothermal Operation
Published on: February 5, 2020
Energy filtering-induced ultrahigh thermoelectric power factors in Ni3Ge
Fabian Garmroudi1,2, Simone Di Cataldo3, Michael Parzer1
1Institute of Solid State Physics, TU Wien, 1040 Vienna, Austria.
Abstract:
Traditional thermoelectric materials rely on low thermal conductivity to enhance their efficiency but suffer from inherently limited power factors. Innovative pathways to optimize electronic transport are thus crucial. Here, we achieve ultrahigh power factors in Ni3Ge-based systems through an unconventional thermoelectric materials design principle. When overlapping flat and dispersive bands are engineered to the Fermi level, charge carriers can undergo intense interband scattering, yielding an energy filtering effect similar to what has long been predicted in certain nanostructured materials. Via a multistep DFT-based screening method developed here, we find a family of L12-ordered binary compounds with ultrahigh power factors up to 11 mW m-1 K-2 near room temperature, which are driven by an intrinsic phonon-mediated energy filtering mechanism. Our comprehensive experimental and theoretical study of these intriguing materials paves the way for understanding and designing high-performance scattering-tuned metallic thermoelectrics.
More Related Videos
Related Concept Videos
Photoelectric Effect
Ionization Energy
Cell Potential and Free Energy
Thermodynamics is the branch of physics dealing with the relationship between heat and other forms of energy. In an electrochemical cell, chemical energy is converted into electrical energy.
Thus, a link can be predicted between cell potential, free energy change, and the equilibrium constant for the reaction. Cell potential can also be measured as the oxidant or the reducing strength, and similar acid-base strength measures are reflected in equilibrium...
Atomic Nuclei: Nuclear Spin State Population Distribution
Heat Capacities of an Ideal Gas III
Finding Electric Potential From Electric Field

