First-principles study of the layered thermoelectric material TiNBr
Shuofeng Zhang, Ben Xu, Yuanhua Lin, Cewen Nan, and Wei Liu

TL;DR
This study investigates TiNBr, a layered thermoelectric material, revealing its high Seebeck coefficient, low thermal conductivity, and the role of anharmonic phonon modes in its thermoelectric performance.
Contribution
First-principles analysis of TiNBr's thermoelectric properties, highlighting low lattice thermal conductivity and the significance of higher-order anharmonic effects.
Findings
Seebeck coefficient of 2215 μV/K at 300K
ZT value of 0.661 at 800K along A axis
Low lattice thermal conductivity of 1.34 W/(m·K)
Abstract
Layer-structured materials are often considered to be good candidates for thermoelectric materials, because they tend to exhibit intrinsically low thermal conductivity as a result of atomic interlayer interactions. The electrical properties of layer-structured materials can be easily tuned using various methods, such as band modification and intercalation. We report TiNBr, as a member of the layer-structured metal nitride halide system MNX (M = Ti, Zr, Hf; X = Cl, Br, I), and it exhibits an ultrahigh Seebeck coefficient of 2215 at 300K. The value of the dimensionless figure of merit, ZT, along A axis can be as high as 0.661 at 800K, corresponding to a lattice thermal conductivity as low as 1.34 W/(m K). The low of TiNBr is associated with a collectively low phonon group velocity ( m/s on average) and large phonon anharmonicity that can be…
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Taxonomy
TopicsMXene and MAX Phase Materials · Inorganic Chemistry and Materials · Machine Learning in Materials Science
