The origin of incipient ferroelectricity in lead telluride

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作者
M. P. Jiang
M. Trigo
I. Savić
S. Fahy
É. D. Murray
C. Bray
J. Clark
T. Henighan
M. Kozina
M. Chollet
J. M. Glownia
M. C. Hoffmann
D. Zhu
O. Delaire
A. F. May
B. C. Sales
A. M. Lindenberg
P. Zalden
T. Sato
R. Merlin
D. A. Reis
机构
[1] Stanford PULSE Institute,Department of Physics
[2] SLAC National Accelerator Laboratory,Department of Physics
[3] Stanford Institute for Materials and Energy Sciences,Departments of Physics and Materials
[4] SLAC National Accelerator Laboratory,Department of Applied Physics
[5] Stanford University,Department of Mechanical Engineering and Materials Science
[6] Tyndall National Institute,Materials Science and Technology Division
[7] Lee Maltings Complex,Department of Materials Science and Engineering
[8] Dyke Parade,Department of Chemistry
[9] University College Cork,Department of Physics
[10] College Road,undefined
[11] Imperial College London,undefined
[12] Stanford University,undefined
[13] Linac Coherent Light Source,undefined
[14] SLAC National Accelerator Laboratory,undefined
[15] Duke University,undefined
[16] Oak Ridge National Laboratory,undefined
[17] Stanford University,undefined
[18] RIKEN SPring-8 Center,undefined
[19] The School of Science,undefined
[20] The University of Tokyo,undefined
[21] University of Michigan,undefined
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摘要
The interactions between electrons and lattice vibrations are fundamental to materials behaviour. In the case of group IV–VI, V and related materials, these interactions are strong, and the materials exist near electronic and structural phase transitions. The prototypical example is PbTe whose incipient ferroelectric behaviour has been recently associated with large phonon anharmonicity and thermoelectricity. Here we show that it is primarily electron-phonon coupling involving electron states near the band edges that leads to the ferroelectric instability in PbTe. Using a combination of nonequilibrium lattice dynamics measurements and first principles calculations, we find that photoexcitation reduces the Peierls-like electronic instability and reinforces the paraelectric state. This weakens the long-range forces along the cubic direction tied to resonant bonding and low lattice thermal conductivity. Our results demonstrate how free-electron-laser-based ultrafast X-ray scattering can be utilized to shed light on the microscopic mechanisms that determine materials properties.
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