Search arXivSearch

arXiv · 2501.17034

Enhanced Thermoelectric Performance through Site-Specific Doping in Tetragonal Cu$_{2}$S: A First-Principles Study

Abstract

This work investigates how site-specific doping can enhance the thermoelectric performance of tetragonal Cu$_{2}$S using Density functional Theory and Projected Atomic Orbital Framework for Electronic Transport. We address the gap in current research, where most doping studies focus on the high-temperature cubic polymorph, leaving the tetragonal structure underexplored. By substituting Cu with Li, Na, or Mg, as well as partially replacing S with Se or Te, we systematically examine changes in electronic structure and transport properties. Our results reveal that cation-site doping can strongly shift the Fermi level. In particular, Li doping enhances the power factor ($σS^2$) by optimizing carrier concentrations and band-edge alignments, whereas Mg, due to its divalent nature, offers a higher carrier density but requires careful balancing to maintain a large Seebeck coefficient. On the anion side, substituting heavier chalcogens (Se or Te) reshapes the valence bands and subtly shifts the Fermi level, yielding moderate improvements in both electrical conductivity and Seebeck coefficient. These doping-induced alterations, captured through transport calculations, demonstrate a clear route for tailoring the interplay between conductivity and thermal transport toward potentially high figure-of-merit values. Overall, the findings highlight the importance of site specificity in doping strategies for tetragonal Cu$_{2}$S, showing that judicious choice of dopant elements and concentrations can significantly improve key thermoelectric metrics. Such insights provide a foundation for experimental validation and further development of Cu$_{2}$S-based materials for mid- to high-temperature thermoelectric applications.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Sonam Phuntsho. 2025-01-28. Enhanced Thermoelectric Performance through Site-Specific Doping in Tetragonal Cu$_{2}$S: A First-Principles Study. https://arxiv.org/abs/2501.17034

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related papers

Incommensurate structural and magnetic modulations in potassium-rich cryptomelane, K$_x$Mn$_8$O$_{16}$ ($x\approx1.45$)

Cryptomelane is a hollandite-like material consisting of K$^+$ cations in an $α$-MnO$_2$ tunnel-like crystallographic motif. Cryptomelane with stoichiometry K$_x$Mn$_8$O$_{16}$ ($x\approx1.45$) has been synthesized and its magnetic properties investigated using variable-temperature magnetic susceptibility, heat capacity, and neutron powder diffraction. Three distinct transitions at $T_1=184$\,K, $T_2=54.5$\,K, and $T_3=24$\,K are observed. At $T_1$ there is a subtle tetragonal$\rightarrow$monoclinic transition associated with emergence of a set of non-magnetic superstructure peaks indexable to a $\vec{k}_\mathrm{struc}\approx0.74\vec{c^*}$ incommensurate modulation parallel to the $α$-MnO$_2$ tunnels. Our findings are consistent with a relation previously reported in titanate hollandites, that $x\approx2|\vec{k}_\mathrm{struc}|$. Magnetic Bragg peaks emerge below $T_2=54.5$\,K, and their positions indicate an incommensurate modulated magnetic structure. The model consistent with the data is a dual-$\vec{k}_\mathrm{mag}$ structure with a ferromagnetic $|\vec{k}_\mathrm{mag}|=0$ component and an incommensurate $\vec{k}_\mathrm{mag}\approx0.37\vec{c^*}$, with the latter most likely to be helical. The period of oscillation of the incommensurate magnetic component is in line with predictions based on a Heisenberg spin Hamiltonian [Mandal \textit{et al}. Phys. Rev. B 90, 104420 (2014)]. Below $T_3=24$\,K, there is a magnetic transition, which gives rise to a different set of magnetic Bragg peaks indicative of a highly complex magnetic structure.

cond-mat.mtrl-sci

An anisotropic functional for two-dimensional material systems

Density function theory is the workhorse of modern electronic structure theory. However, its accuracy in practical calculations is limited by the choice of the exchange-correlation potential. In this respect, two-dimensional materials pose a special challenge, as all these materials and their heterostructures have a crucial similarity. The underlying atomic structures are strongly spatially inhomogeneous, implying that current exchange-correlation functionals, that in almost all cases are isotropic, are ill-prepared for an accurate description. We present an anisotropic screened-exchange potential, that remedies this problem and reproduces the band-gap of 2D materials as well as the piecewise linearity of the total energy with fractional occupation number.

cond-mat.mtrl-sci

Thermally-driven reorientation of the Néel vector in altermagnetic MnTe

Altermagnets are novel magnetic systems that possess a spin-polarized electronic band structure without a net magnetic moment, making them promising for device applications. Hexagonal MnTe, a prototypical altermagnet, arguably exhibits the most properties consistent with theoretical predictions, including an anomalous Hall effect despite a vanishing net magnetization, and altermagnetinduced electronic band splitting. However, fundamental questions remain, including why some effects only appear significantly below the magnetic ordering temperature. Here, we resolve this discrepancy by revealing a reorientation of the Néel vector in single-crystalline MnTe. The Néel vector points 30° from the a-axis at low $T$, before aligning directly with the a-axis around $T\simeq 260$ K. We attribute this to single-ion anisotropy, which depends on temperature-dependent lattice parameters. We obtained these results using muon-spin spectroscopy, magnetization measurements, and X-ray diffraction; we show that the findings are consistent with neutron diffraction. Manipulating this effect, for example through strain, could unlock sensitive electronic detection schemes for external stimuli, paving the way for functional altermagnetic devices.

cond-mat.mtrl-sci