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Profile Summary

Mohammad Hamzah Fauzi is a senior researcher and the group leader of the Quantum Devices & Technology research group. He obtained his doctoral degree from Tohoku University, Japan (2013), specializing in quantum transport and quantum devices.

  • Research Keywords: Quantum Transport, Quantum Devices.
  • Contact: mohammad.hamzah.fauzi(at)brin.go.id
  • Metrics: Google Scholar, Scopus

Academic Degrees

Work Experience

  • 2022–present, Group Leader, Quantum Devices and Technology Research Group, BRIN Research Center for Quantum Physics, Indonesia.
  • 2022–present, Senior Researcher, BRIN Research Center for Quantum Physics, Indonesia.
  • 2021–2022, Senior Researcher, BRIN Research Center for Physics, Indonesia.
  • 2019–2021, Junior Researcher, Research Center for Physics, Indonesian Institute of Sciences, Indonesia.
  • 2017–2019, Specially-Appointed Assistant Professor, Graduate Program in Spintronics, Tohoku University, Japan.
  • 2014–2017, Assistant Professor, Department of Physics, Tohoku University, Japan.

Selected Publications

  • Y. Hayafuchi, R. Konno, A. Noorhidayati, M. H. Fauzi, N. Shibata, K. Hashimoto, and Y. Hirayama, “Even-Denominator Fractional Quantum Hall State in Conventional Triple-Gated Quantum Point Contact”, Appl. Phys. Express 15, 025002 (2022).
  • M. H. Fauzi, William J. Munro, Kae Nemoto, and Y. Hirayama, “Double nuclear spin relaxation in hybrid quantum Hall systems”, Phys. Rev. B 104, L121402 (2021).
  • M. H. Fauzi, M. F. Sahdan, M. Takahashi, A. Basak, K. Sato, K. Nagase, B. Muralidharan, and Y. Hirayama, “Probing strain modulation in a gate-defined one-dimensional electron system”, Phys. Rev. B 100, 241301(R) (2019).
  • S. Maeda, S. Miyamoto,  M. H. Fauzi, K. Nagase, K. Sato, and  Y. Hirayama, “Fabry-Pérot interference in a triple-gated quantum point contact”, Appl. Phys. Lett. 109, 143509 (2016).
  • M. H. Fauzi, S. Watanabe, and Y. Hirayama, “Microscopic Characteristics of Dynamic Nuclear Polarization and Selective Nuclear Depolarization at the v = 2/3 Spin Phase Transition”, Appl. Phys. Lett. 101, 162105 (2012).