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Scale-bridging interface design enables high-performance sustainable thermoelectrics

delete2026-07-18
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OA
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G
Gang Wu
A
Airan Li
X
Xinzhi Wu
T
Takao Mori *
DOI:10.1038/s41467-026-75865-1delete
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Abstract

Abstract

En 中文
Improving energy efficiency and reducing resource waste motivate sustainable thermoelectric technologies for harvesting low-grade heat. Yet achieving high-performance and durable systems remains challenging due to coupled transport and multiscale optimization. Here, we establish a scale-bridging interface-centric design strategy that links macroscopic junction engineering and microscopic interface modulation. Based on n-type Mg3(Sb, Bi)2 as the representative system and guided by comparative evaluation of device-level contact interfaces, we translate Mg2Ni into a scale-bridging interfacial phase in n-type Mg3(Sb, Bi)2: it forms low-resistance and thermally stable external junctions while, as an internal interfacial modifier, alleviating grain-boundary carrier scattering and strengthening phonon scattering. This scale-bridged interface design yields an average zT of 1.5 over 300 to 723 K with high thermal stability. By applying Mg2Ni as both an internal modifier and an external barrier layer, a two-pair module delivers a stable conversion efficiency of 8.3% when coupled with p-type MgAgSb, comparing favorably with representative Bi2Te3-based thermoelectric modules in terms of conversion efficiency under comparable temperature differences. This work establishes a bridging interface design framework that links device contact engineering with internal interface modulation, providing a practical route toward efficient and durable thermoelectric energy conversion. By linking device contacts with internal material interfaces, this study introduces a scale-bridging design that improves charge transport and heat management, enabling thermoelectric modules to convert waste heat into electricity more efficiently.
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Journal

Nature Communications cover
Nature Communications
IF:
15.7
Papers:
9.2W
Citations:
91.2W

Organization

N
National Institute for Materials Science
Scholars:
634
Papers: 302
Citations: 2.2W