Direct visualization of relativistic quantum scars in graphene quantum dots
Article 2024 en
Authors
ZG
Zhehao Ge
AG
Anton M. Graf
JK
Joonas Keski-Rahkonen
Abstract
1 min read
Quantum scars refer to eigenstates with enhanced probability density along unstable classical periodic orbits. First predicted 40 years ago<sup>1</sup>, scars are special eigenstates that counterintuitively defy ergodicity in quantum systems whose classical counterpart is chaotic<sup>2,3</sup>. Despite the importance and long history of scars, their direct visualization in quantum systems remains an open field<sup>4-10</sup>. Here we demonstrate that, by using an in situ graphene quantum dot (GQD) creation and a wavefunction mapping technique<sup>11,12</sup>, quantum scars are imaged for Dirac electrons with nanometre spatial resolution and millielectronvolt energy resolution with a scanning tunnelling microscope. Specifically, we find enhanced probability densities in the form of lemniscate ∞-shaped and streak-like patterns within our stadium-shaped GQDs. Both features show equal energy interval recurrence, consistent with predictions for relativistic quantum scars<sup>13,14</sup>. By combining classical and quantum simulations, we demonstrate that the observed patterns correspond to two unstable periodic orbits that exist in our stadium-shaped GQD, thus proving that they are both quantum scars. In addition to providing unequivocal visual evidence of quantum scarring, our work offers insight into the quantum-classical correspondence in relativistic chaotic quantum systems and paves the way to experimental investigation of other recently proposed scarring species such as perturbation-induced scars<sup>15-17</sup>, chiral scars<sup>18,19</sup> and antiscarring<sup>20</sup>.
Zhehao Ge, Anton M. Graf, Joonas Keski-Rahkonen, Sergey Slizovskiy, Peter Polizogopoulos, Takashi Taniguchi, Kenji Watanabe, Ryan Van Haren, David Lederman, Vladimir I. Fal’ko, Eric J. Heller, Jairo Velasco
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