<p>Graphene magnetic quantum dots present a fascinating platform for studying quantum information, where magnetic flux plays a pivotal role in shaping their behavior. This study delves into the intricate relationship between magnetic flux and quantum energy levels, revealing how controlled variations can influence the distribution of quantum states. By analyzing Shannon information densities, we uncover how magnetic fields optimize the system’s informational content while enhancing energy quantization. Our findings shed new light on the potential of magnetic flux as a tool for manipulating quantum properties, opening exciting possibilities for advancements in quantum computing and nanotechnology.</p>

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Effects of magnetic flux on the information entropy of graphene magnetic quantum dots

  • Allan R. P. Moreira,
  • Abdelmalek Bouzenada,
  • Mona Abdi,
  • Faizuddin Ahmed

摘要

Graphene magnetic quantum dots present a fascinating platform for studying quantum information, where magnetic flux plays a pivotal role in shaping their behavior. This study delves into the intricate relationship between magnetic flux and quantum energy levels, revealing how controlled variations can influence the distribution of quantum states. By analyzing Shannon information densities, we uncover how magnetic fields optimize the system’s informational content while enhancing energy quantization. Our findings shed new light on the potential of magnetic flux as a tool for manipulating quantum properties, opening exciting possibilities for advancements in quantum computing and nanotechnology.