Caglieris Federico, Ricci Fabio, Lamura Gianrico, Martinelli Albert, Palenzona A, Pallecchi Ilaria, Sala Alberto, Profeta Gianni, Putti Marina
CNR-SPIN-Genova corso Perrone 24, 16152, Genova, Italy.
CNR-SPIN and Department of Physical and Chemical Sciences, University of L'Aquila, Via Vetoio 1, 67100 L'Aquila, Italy.
Sci Technol Adv Mater. 2012 Nov 26;13(5):054402. doi: 10.1088/1468-6996/13/5/054402. eCollection 2012 Oct.
We explore the electronic, transport and thermoelectric properties of Fe Se Te compounds to clarify the mechanisms of superconductivity in Fe-based compounds. We carry out first-principles density functional theory (DFT) calculations of structural, electronic, magnetic and transport properties and measure resistivity, Hall resistance and Seebeck effect curves. All the transport properties exhibit signatures of the structural/magnetic transitions, such as discontinuities and sign changes of the Seebeck coefficient and of the Hall resistance. These features are reproduced by calculations provided that antiferromagnetic correlations are taken into account and experimental values of lattice constants are considered in DFT calculations. On the other hand, the temperature dependences of the transport properties can not be fully reproduced, and to improve the agreement between experiment and DFT calculations it is necessary to go beyond the constant relaxation time approximation and take into account correlation effects.
我们研究了FeSeTe化合物的电学、输运和热电性质,以阐明铁基化合物中超导性的机制。我们对结构、电子、磁性和输运性质进行了第一性原理密度泛函理论(DFT)计算,并测量了电阻率、霍尔电阻和塞贝克效应曲线。所有的输运性质都表现出结构/磁转变的特征,例如塞贝克系数和霍尔电阻的不连续性和符号变化。只要考虑反铁磁关联并在DFT计算中考虑晶格常数的实验值,这些特征就能通过计算得到重现。另一方面,输运性质的温度依赖性无法完全重现,为了提高实验与DFT计算之间的一致性,有必要超越恒定弛豫时间近似并考虑关联效应。