论文标题
半仪的热电特性,具有非弹性电子孔散射
Thermoelectric properties in semimetals with inelastic electron-hole scattering
论文作者
论文摘要
我们根据线性化玻尔兹曼方程的变异方法提出了有关半学中热电效应的系统理论结果。已知非弹性电子孔散射在半法的不寻常运输中起着重要作用,包括$ T^2 $温度的电阻率的温度依赖性以及对Wiedemann-Franz定律的强烈侵犯。通过更精确地处理超出松弛时间近似的非弹性电子孔散射,我们表明,补偿时的Seebeck系数取决于库仑相互作用的筛选长度以及洛伦兹(Lorenz)的比率(由于电子除以温度而导致的热导电性与电导率之比)。发现与补偿条件的偏差显着增加了塞贝克系数,以及洛伦兹比率的关键抑制。结果表明,当抑制声子对热导率的贡献时,具有电子孔散射的无偿半学具有高热电效率。
We present systematic theoretical results on thermoelectric effects in semimetals based on the variational method of the linearized Boltzmann equation. Inelastic electron-hole scattering is known to play an important role in the unusual transport of semimetals, including the broad $T^2$ temperature dependence of the electrical resistivity and the strong violation of the Wiedemann-Franz law. By treating the inelastic electron-hole scattering more precisely beyond the relaxation time approximation, we show that the Seebeck coefficient when compensated depends on the screening length of the Coulomb interaction as well as the Lorenz ratio (the ratio of thermal to electric conductivity due to electrons divided by temperature). It is found that deviations from the compensation condition significantly increase the Seebeck coefficient, along with crucial suppressions of the Lorenz ratio. The result indicates that uncompensated semimetals with the electron-hole scattering have high thermoelectric efficiency when the phonon contribution to thermal conductivity is suppressed.