Institute for Advanced Study, Shenzhen University, Nanhai Avenue 3688, Shenzhen 518060, China.
Phys Chem Chem Phys. 2019 Mar 6;21(10):5679-5688. doi: 10.1039/c8cp05793a.
Confinement or dimensionality reduction is a novel strategy to reduce the lattice thermal conductivity and, consequently, to improve the thermoelectric conversion performance. Bismuth and tellurium based low-dimensional materials have great potential in this regard. The phonon transport and thermoelectric properties of Bi2Te2X (X = S, Se, Te) monolayers are systematically investigated by employing density functional theory and the Boltzmann transport equation. The calculated lattice thermal conductivity of these 2D systems ranges from ∼1.3 W m-1 K-1 (Bi2Te2Se) to ∼1.5 W m-1 K-1 (Bi2Te3) for a 10 μm system size at room temperature and considering spin-orbit coupling in harmonic force constants. This remarkably low lattice thermal conductivity is attributed to small group velocities and enhanced anharmonic phonon scattering rates. A detailed analysis is presented in terms of mode-level phonon group velocities, anharmonic scattering rates and phonon mean free paths. Our results reveal that the thermal transport in these 2D systems is dominated by in-plane transverse acoustic modes. Additionally, the thermal conductivity can be further reduced by decreasing the sample size due to phonon-boundary scattering. The thermoelectric properties including the Seebeck coefficient, power factor and electrical conductivity are calculated using the semi-classical Boltzmann transport equation within the rigid band approximation. The low thermal conductivities coupled with their high carrier mobilities lead to good thermoelectric power factors. With optimal carrier doping, a figure of merit ∼0.6 can be achieved at room temperature, which increases to ∼0.8 at 700 K, thus making them promising candidates for thermoelectric applications.
限制或降维是一种降低晶格热导率、提高热电转换性能的新策略。基于铋和碲的低维材料在这方面具有很大的潜力。本研究采用密度泛函理论和玻尔兹曼输运方程系统地研究了 Bi2Te2X(X=S,Se,Te)单层的声子输运和热电性质。对于室温下 10 μm 系统尺寸的这些二维体系,考虑到自旋轨道耦合对简谐力常数的影响,计算得到的晶格热导率范围约为 1.3 W m-1 K-1(Bi2Te2Se)至 1.5 W m-1 K-1(Bi2Te3)。这种显著降低的晶格热导率归因于小的群速度和增强的非谐声子散射率。我们从模式级声子群速度、非谐散射率和声子平均自由程等方面进行了详细的分析。结果表明,这些二维体系中的热输运主要由面内横向声学模式主导。此外,由于声子边界散射,热导率还可以通过减小样品尺寸进一步降低。在刚性带近似下,利用半经典玻尔兹曼输运方程计算了包括塞贝克系数、功率因子和电导率在内的热电性质。低的热导率与高载流子迁移率相结合,导致了良好的热电功率因子。通过最佳的载流子掺杂,在室温下可以实现约 0.6 的品质因数,在 700 K 时增加到约 0.8,因此它们是很有前途的热电应用候选材料。