Submitted:
30 September 2025
Posted:
02 October 2025
You are already at the latest version
Abstract
Keywords:
1. Introduction
2. Theoretical Model



3. Results
4. Conclusions
Acknowledgments
References
- K.S. Novoselov et al. Science, 666, 306, (2004).
- Xinming, Li; et al. Appl. Phys. Rev. 021306, 4, (2017).
- J. Iñarrea, G. J. Iñarrea, G.Platero. Coherent states in microwave-induced resistance oscillations and zero resistance states Phys. Rev. Res. 6, 13340, 2024.
- J. Iñarrea J. arXiv:2507.17630.
- J. Iñarrea, G. J. Iñarrea, G. Platero. Theoretical Approach to Microwave-Radiation-Induced Zero-Resistance States in 2D Electron Systems Phys. Rev. Lett. 2005, 94, 016806, 2005.
- J. Iñarrea. Radiation-induced resistance oscillations in 2D electron systems with strong Rashba coupling Sci. Rep. 7, 13573, 2017.
- E.H. Kerner. Note on the Forced and Damped Oscillator in Quantum Mechanics Can. J. Phys.36, 371, 1958.
- K. Park. Radiation-induced zero-resistance state at low magnetic fields and near half-filling of the lowest Landau level Phys. Rev. B. 69, 201301(R), 2004.
- J. Iñarrea. Linear polarization sensitivity of magnetotransport in irradiated two-dimensional electron systems J. Appl. Phys. 113, 183717, 2013.
- J. Iñarrea, G. J. Iñarrea, G. Platero. Microwave-induced resistance oscillations and zero-resistance states in two-dimensional electron systems with two occupied subbands Phys. Rev. B. 84, 075313, 2011.
- R.G. Mani, J.H. R.G. Mani, J.H. Smet, K. von Klitzing, V. Narayanamurti, W.B. Johnson, and V.Umansky. Zero-resistance states induced by electromagnetic-wave excitation in GaAs/AlGaAs heterostructures Nature. 420, 646, 2002.
- M.A Zudov, R.R. M.A Zudov, R.R. Lu, N. Pfeiffer and K.W. West. Evidence for a New Dissipationless Effect in 2D Electronic Transport Phys. Rev. Lett. 90, 046807, 2003.
- V.V. Dodonov. Nonclassical states in quantum optics: a `squeezed’ review of the first 75 years J. Opt. B:Quantum Semiclass. Opt. 2002 4, R1, 2002.
- B.Yurke and D.Stoler. Generating quantum mechanical superpositions of macroscopically distinguishable states via amplitude dispersion Phys. Rev. Lett. 57, 13, 1986.
- M. W. Noel and C.R. Stroud. Excitation of an Atomic Electron to a Coherent Superposition of Macroscopically Distinct States Phys. Rev. Lett. 77, 1913, 1986.
- V. Chap. 4. Taylor and Francis. London and NewYork. 2003.
- E. Srodinger, Die Naturwissenschften, 14, 664, (1926).
- R.J. Glauber, Phys. Rev. 2766.
- C. Cohen-Tannoudji, B. C. Cohen-Tannoudji, B. Diu and F. Laloë. Quantum Mechanics. 1991. [Google Scholar]
- A. T. Hatke, M. A. A. T. Hatke, M. A. Zudov, L. N. Pfeiffer and K.W. West. Giant microwave photoresistivity in high-mobility quantum Hall systems Phys. Rev. B 83, 121301(R), 2011.
- Y.Dai Y., R.R. Y.Dai Y., R.R. Du, L.N. Pfeiffer and K.W.West. Observation of a Cyclotron Harmonic Spike in Microwave-Induced Resistances in Ultraclean GaAs/AlGaAs Quantum Wells Phys. Rev. Lett. 105, 246802, 2010.
- V. A. Volkov and A. A. Zabolotnykh. Bernstein modes and giant microwave response of a two-dimensional electron system Phys. Rev. B 89, 121410(R), 2014.
- L. Bockhorn, P. L. Bockhorn, P.Barthold, D. Schuh, W. Wegscheider and R.J. Haug. Magnetoresistance in a high-mobility two-dimensional electron gas Phys. Rev. B. 83, 113301, 2011.
- R. G. Mani, A. R. G. Mani, A. Kriisa and W. Wegscheider. Size-dependent giant-magnetoresistance in millimeter scale GaAs/AlGaAs 2D electron devices 2013, 3, 2747, 2013.
- J. Iñarrea. Theoretical model for negative giant magnetoresistance in ultrahigh-mobility 2D electron systems EPL 2014, 106, 47005, 2014.
- J. Iñarrea, L. J. Iñarrea, L. Bockhorn and R.J. Haug. Negative huge magnetoresistance in high-mobility 2D electron gases: DC-current dependence EPL, 115, 17005, 2016.
- L. Bockhorn, D. L. Bockhorn, D. Schuh, C.Reichl, W. Wegscheider and R.J. Haug. Influence of the electron density on the giant negative magnetoresistance in two-dimensional electron gases Phys. Rev. B 109, 205416, 2024.
- J.Inarrea and G.Platero. Microwave-induced resistance oscillations and zero-resistance states in two-dimensional electron systems with two occupied subbands. Phys. Rev. B. 84, 075313, 2011.
- R.L. de Matos Filho and W. Vogel. Even and Odd Coherent States of the Motion of a Trapped Ion Phys. Rev. Lett. 76, 608, 1996.
- J.I. Cirac, M. J.I. Cirac, M. Lewenstein, K. Mølmer and P. Zoller. Quantum superposition states of Bose-Einstein condensates Phys. Rev. A 57, 1208, 1998.
- Nicolas, J. Cerf, Gerd Leuchs and Eugene S. Polzik, Quantum Information with Continuous Variables of Atoms and Ligh Imperial College Press, London, 2007.
- B.K. Ridley. Quantum Processes in Semiconductors, 1993.
- T. Ando, A. T. Ando, A. Fowler and F. Stern, Electronic properties of two-dimensional systems Rev. Mod. Phys. 54, 1982.
- B. World Scientific. 1994.
- S.A. Studenikin et al. The microwave induced resistance response of a high mobility 2DEG from the quasi-classical limit to the quantum Hall regime Physica E, 2006, 54, 73, 2006.
- J. Iñarrea and G. Platero, Effect of an in-plane magnetic field on microwave-assisted magnetotransport in a two-dimensional electron system Phys. Rev. B. 78, 193310, 2008.
- John, H. Davies, The Physics of Low-dimensional Semiconductors 1997 Cambridge University Press.




Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2025 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).