离域电子
热电效应
热导率
二聚体
材料科学
热电材料
凝聚态物理
热的
电阻率和电导率
物理
热力学
核磁共振
复合材料
量子力学
作者
Jie Zhang,Minghao Zhan,W.C. Wang,Xiaohong Xia,Yun Gao,Zhongbing Huang
标识
DOI:10.1016/j.rinp.2025.108285
摘要
• Investigation of interlayer interactions in arsenide compounds RuAs 4 , SrAs 4 , and AgAs 2 reveals the impact on carrier transport properties, with potential implications for thermoelectric material design. • The larger interlayer spacing and weaker ionic interactions in SrAs 4 enable a rattling model, significantly reducing lattice thermal conductivity compared to RuAs 4 . • AgAs 2 demonstrates large lattice anharmonicity due to subvalent Ag2 dimers that act as cluster rattling within the 2D As layer, while its delocalized bonding interactions help overcome the common carrier transport constraints in layered thermoelectrics • Prediction of a high p-type thermoelectric ZT of 2.8 at 400 K for AgAs 2 , leveraging its multiple valence band extrema, underscores the potential for discovering new high-performance layered thermoelectric materials based on interlayer bonding strength manipulation. Layered thermoelectric materials inherently feature a decoupling of electron and phonon transport, attributed to the high electrical conductivity within the covalent atomic layers and the increased phonon scattering at the layer boundaries. However, the weak atomic interactions along the out-of-plane direction present a considerable obstacle in enhancing the thermoelectric performance of these materials. In this work, we employ RuAs 4 (FeAs 4 ), SrAs 4 (CaAs 4 ), and AgAs 2 (CuAs 2 ) as representative compounds to theoretically explore the influence of bonding characteristics on the carrier transport in quasi-layered structures. We find that, in comparison to RuAs 4 (FeAs 4 ) with a similar atomic mass and crystal structure, the room temperature lattice thermal conductivity can be dramatically decreased from 10.2 (5.6) W/mK to 0.83 (1.69) W/mK in SrAs 4 (CaAs 4 ). This reduction is linked to the weak ionic interaction between the covalently bonded As layers and the Sr (Ca) atoms, resembling a rattling model that effectively scatters heat-conducting acoustic phonons. Conversely, the subvalent Ag 2 dimers and delocalized Ag-As bonds in AgAs 2 ensure rational electrical transport while preserving significant lattice anharmonicity due to the dimer clusters’ rattler-like behavior. Coupled with an enhanced Seebeck coefficient resulting from the elevated valence band degeneracy, we predict an p-type average thermoelectric ZT of 2.8 at 400 K. Our results provide an approach for modulating carrier transport in layered thermoelectrics via atomic or cluster intercalation, potentially serving as a guide for identifying novel thermoelectric materials.
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