English

Discovery of transient topological crystalline order in optically driven SnSe

Materials Science 2025-05-19 v2 Mesoscale and Nanoscale Physics Optics

Abstract

Ultrafast optical excitation provides a powerful route for accessing emergent quantum phases far from equilibrium, enabling transient light-induced phenomena such as magnetism, ferroelectricity, and superconductivity. However, extending this approach to induce topological phases, especially in conventional semiconductors, remains challenging. Here, we report the observation of a thermally inaccessible, transient topological crystalline order in the layered semiconductor SnSe, a trivial insulator with a sizable (~ 0.8 eV) band gap, induced by femtosecond above-gap excitation. Time- and angle-resolved photoemission spectroscopy directly reveals the sub-picosecond emergence of Dirac-like linear dispersions within the band gap. Their features, including a high Fermi velocity (~ 2.5x10^5 m/s), multiple Dirac points away from high-symmetry momenta, and independence from probe photon energy, are consistent with mirror-symmetry-protected surface states of a topological crystalline insulator. The observed spectral dynamics, combined with density functional theory calculations, indicate that the femtosecond excitation transiently increases lattice symmetry, enabling topological crystalline order to emerge. Our discovery opens new avenues for ultrafast optical control of topological quantum phases in semiconductors, with potential applications in quantum and spintronic devices.

Keywords

Cite

@article{arxiv.2502.14800,
  title  = {Discovery of transient topological crystalline order in optically driven SnSe},
  author = {Masataka Mogi and Dongsung Choi and Kyoung Hun Oh and Diana Golovanova and Yufei Zhao and Yifan Su and Zongqi Shen and Doron Azoury and Haoyu Xia and Batyr Ilyas and Tianchuang Luo and Noriaki Kida and Taito Osaka and Tadashi Togashi and Binghai Yan and Nuh Gedik},
  journal= {arXiv preprint arXiv:2502.14800},
  year   = {2025}
}

Comments

27 pages, 5 figures