The Electronic Band Structure and Conduction Band formation of HfSe<sub>3</sub>

ORAL

Abstract

Abstract: The anisotropic structure of Group 4 transition metal trichalcogenides (TMTCs) have gained significant interest due to various optoelectronic applications. In this work, the band structure of quasi one-dimensional HfSe3 is investigated with nano-spot angle resolved photoemission spectroscopy (nanoARPES). The effective hole mass extracted from the band structure was compared with that of TiS3 and ZrS3 from prior studies 1. X-ray absorption spectroscopy (XAS) has been used to characterize the unoccupied states of HfSe3 and will be compared to the XAS spectra of HfS3 2 and TiS3 and ZrS3 3. The metal chalcogenide hybridization for Hf differs from the Ti and Zr trichalcogenides. This may be due to the increase in effective atomic number leading to strong spin-orbit interaction of Hf based TMTCs.

References

[1] Yi, H.; Gilbert, S. J.; Lipatov, A.; Sinitskii, A.; Avila, J.; Abourahma, J.; Komesu, T.; Asensio, M. C.; Dowben, P. A. The Electronic Band Structure of Quasi-One-Dimensional van Der Waals Semiconductors: The Effective Hole Mass of ZrS 3 Compared to TiS 3. J. Phys.: Condens. Matter 2020, 32 (29), 29LT01. https://doi.org/10.1088/1361-648X/ab832c.

[2] Lipatov, A.; Abourahma, J.; Viswan, G.; Acharya, K.; Paudel, T. R.; Loes, M. J.; Bagheri, S.; N’Diaye, A. T.; Mishra, E.; Ekanayaka, T. K.; Zaz, M.; Rodenburg, J.; Dhingra, A.; Streubel, R.; Dowben, P. A.; Sinitskii, A. Electronic Transport and Polarization-Dependent Photoresponse in Few-Layered Hafnium Trisulfide (HfS 3 ) Nanoribbons. J. Mater. Chem. C 2023, 11 (28), 9425–9437. https://doi.org/10.1039/D3TC00773A.

[3] Gilbert, S. J.; Yi, H.; Paudel, T.; Lipatov, A.; Yost, A. J.; Sinitskii, A.; Tsymbal, E. Y.; Avila, J.; Asensio, M. C.; Dowben, P. A. Strong Metal–Sulfur Hybridization in the Conduction Band of the Quasi-One-Dimensional Transition-Metal Trichalcogenides: TiS 3 and ZrS 3. J. Phys. Chem. C 2022, 126 (41), 17647–17655. https://doi.org/10.1021/acs.jpcc.2c05589.

*This research was supported by the National Science Foundation through EPSCoR RII Track-1: Emergent Quantum Materials and Technologies (EQUATE), Award No. OIA-2044049

Presenters

  • Gauthami Viswan

    • University of Nebraska - Lincoln

Authors

  • Gauthami Viswan

    • University of Nebraska - Lincoln
  • Alexey Lipatov

    • University of Nebraska - Lincoln
    • South Dakota School of Mines & Technology
  • Alexander Sinitskii

    • University of Nebraska - Lincoln
  • Jose Avila

    • Synchrotron SOLEIL and Universite Paris-Sacley
    • Synchrotron SOLEIL
  • Esha Mishra

    • University of Nebraska - Lincoln
  • Mohammad Z Zaz

    • University of Nebraska - Lincoln
  • Wai Kiat Chin

    • University of Nebraska-Lincoln
  • Arjun Subedi

    • University of Nebraska - Lincoln
    • University of Nebraska-Lincoln
  • Takashi Komesu

    • University of Nebraska - Lincoln
  • Maria C Asensio

    • Madrid Institute of Materials Science (ICMM)
  • Archit Dhingra

    • Institute de Ciencia dels Materials de la Universitat de Valencia (ICMUV)
  • Peter A Dowben

    • University of Nebraska - Lincoln
    • University of Nebraska-Lincoln
    • Dept. of Physics and Astronomy, U. of Nebraska, Lincoln, Nebraska