Transient gap generation in BaFe2As2 driven by coherent lattice vibrations

Author:

Warshauer Jacob A1,Bustamante Lopez Daniel Alejandro1,Dong Qingxin23,Chen Genfu23,Hu Wanzheng14ORCID

Affiliation:

1. Department of Physics, Boston University , 590 Commonwealth Avenue, Boston, 02215 MA , USA

2. Institute of Physics and Beijing National Laboratory for Condensed Matter Physics, Chinese Academy of Sciences , 8 Zhongguancun 3rd South Street, 100190 Beijing , China

3. School of Physical Sciences, University of Chinese Academy of Sciences , No. 19 A Yuquan Road, 100049 Beijing , China

4. Division of Materials Science and Engineering, Boston University , 590 Commonwealth Avenue, Boston, 02215 MA , USA

Abstract

Abstract Iron-based superconductors provide a rich platform to investigate the interplay between unconventional superconductivity, nematicity, and magnetism. The electronic structure and the magnetic properties of iron-based superconductors are highly sensitive to the pnictogen height. Coherent excitation of the A1g phonon by femtosecond laser directly modulates the pnictogen height, which has been used to control the physical properties of iron-based superconductors. Previous studies show that the driven A1g phonon resulted in a transient increase of the pnictogen height in BaFe2As2, favoring an enhanced Fe magnetic moment. However, there are no direct observations on either the enhanced Fe magnetic moments or the enhanced spin-density wave (SDW) gap. Here, we use time-resolved broadband terahertz spectroscopy to investigate the dynamics of BaFe2As2 in the A1g phonon-driven state. Below the SDW transition temperature, we observe a transient gap generation at early-time delays. A similar transient feature is observed in the normal state up to room temperature.

Funder

National Science Foundation

US Department of Energy

National Natural Science Foundation of China

Chinese Academy of Sciences

Ministry of Science and Technology of China

Publisher

Oxford University Press (OUP)

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