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Journal ArticleDOI

Ultralow thermal conductivity and high thermoelectric figure of merit in SnSe crystals

TLDR
An unprecedented ZT of 2.6 ± 0.3 at 923 K is reported in SnSe single crystals measured along the b axis of the room-temperature orthorhombic unit cell, which highlights alternative strategies to nanostructuring for achieving high thermoelectric performance.
Abstract
The thermoelectric effect enables direct and reversible conversion between thermal and electrical energy, and provides a viable route for power generation from waste heat The efficiency of thermoelectric materials is dictated by the dimensionless figure of merit, ZT (where Z is the figure of merit and T is absolute temperature), which governs the Carnot efficiency for heat conversion Enhancements above the generally high threshold value of 25 have important implications for commercial deployment, especially for compounds free of Pb and Te Here we report an unprecedented ZT of 26 ± 03 at 923 K, realized in SnSe single crystals measured along the b axis of the room-temperature orthorhombic unit cell This material also shows a high ZT of 23 ± 03 along the c axis but a significantly reduced ZT of 08 ± 02 along the a axis We attribute the remarkably high ZT along the b axis to the intrinsically ultralow lattice thermal conductivity in SnSe The layered structure of SnSe derives from a distorted rock-salt structure, and features anomalously high Gruneisen parameters, which reflect the anharmonic and anisotropic bonding We attribute the exceptionally low lattice thermal conductivity (023 ± 003 W m(-1) K(-1) at 973 K) in SnSe to the anharmonicity These findings highlight alternative strategies to nanostructuring for achieving high thermoelectric performance

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Citations
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Journal ArticleDOI

Optimization of thermoelectric properties in n-type SnSe doped with BiCl3

TL;DR: In this article, a n-type SnSe compound has been synthesized through melting with spark plasma sintering, and the carrier concentration of SnSe is significantly increased, leading to a large enhancement of electrical conductivity.
Journal ArticleDOI

Gate-Tunable In-Plane Ferroelectricity in Few-Layer SnS.

TL;DR: In most ferroelectric materials, polarization is destabilized in ultrathin ferroelectrics as mentioned in this paper, which holds great promise for modern miniaturized sensors, memories, and optoelectronic devices.
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Time-domain thermoreflectance (TDTR) measurements of anisotropic thermal conductivity using a variable spot size approach.

TL;DR: This work extends the time-domain thermoreflectance method with a variable spot size approach to simultaneously measure the in-plane and the through-plane thermal conductivity of materials with strong anisotropy, and establishes a criterion for the range of thermal Conductivity that can be measured reliably using the proposed variable spotsize TDTR approach.
Journal ArticleDOI

N-type Bi-doped PbTe nanocubes with enhanced thermoelectric performance

TL;DR: In this paper, Bi dopants effectively improved the electrical transport properties of the as-sintered PbTe nanomaterials by tuning the carrier concentrations, achieving promising electrical conductivity and Seebeck coefficient.
References
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Journal ArticleDOI

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TL;DR: A simple derivation of a simple GGA is presented, in which all parameters (other than those in LSD) are fundamental constants, and only general features of the detailed construction underlying the Perdew-Wang 1991 (PW91) GGA are invoked.
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From ultrasoft pseudopotentials to the projector augmented-wave method

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Special points for brillouin-zone integrations

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TL;DR: A new era of complex thermoelectric materials is approaching because of modern synthesis and characterization techniques, particularly for nanoscale materials, and the strategies used to improve the thermopower and reduce the thermal conductivity are reviewed.
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High-performance bulk thermoelectrics with all-scale hierarchical architectures

TL;DR: It is shown that heat-carrying phonons with long mean free paths can be scattered by controlling and fine-tuning the mesoscale architecture of nanostructured thermoelectric materials, and an increase in ZT beyond the threshold of 2 highlights the role of, and need for, multiscale hierarchical architecture in controlling phonon scattering in bulk thermoeLECTrics.
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