ArXiv TLDR

Poor man's Majorana bound states in quantum dot based Kitaev chain coupled to a photonic cavity

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2604.15036

Francesco Buonemani, Alvaro Gómez-León, Marco Schirò, Olesia Dmytruk

cond-mat.mes-hall

TLDR

This paper shows how to engineer poor man's Majorana bound states in quantum dot Kitaev chains by using a photonic cavity to screen interactions.

Key contributions

  • Develops a microscopic model for a quantum dot Kitaev chain embedded in a photonic cavity.
  • Demonstrates that photon coupling allows screening of particle interactions to achieve "sweet spot" conditions.
  • Shows attractive interactions are canceled by a zero-photon state, and repulsive by a one-photon state.
  • Finds that large photon numbers suppress hopping amplitudes, resulting in a degenerate spectrum.

Why it matters

This work provides a novel method to engineer Majorana bound states, essential for topological quantum computing, by leveraging quantum light in photonic cavities. It opens new avenues for robust quantum information processing.

Original Abstract

Quantum dot based platforms offer a promising route towards realizing the Kitaev chain Hamiltonian hosting Majorana bound states (MBSs). Poor man's MBSs arise in a two-site Kitaev chain when the parameters of the system are fine-tuned to the sweet spot. Based on our previous work [Phys. Rev. B 111, 155410 (2025)], we consider a microscopic model for the Kitaev chain based on quantum dots with proximity effect embedded in a photonic cavity. We find that the photon coupling in the microscopic model yields an effective Hamiltonian where the cavity affects the pairing term. However, we demonstrate that even in this case, it is possible to screen particle interactions and reach the sweet spot condition for the emergence of the poor man's MBSs. In particular, we find that attractive particle interactions can be canceled for the cavity prepared in the zero-photon state, while repulsive ones can be screened with a cavity prepared in the one-photon state. Furthermore, in case of a large number of photons in the cavity, we find that the hopping amplitudes are suppressed resulting in a degenerate spectrum. This motivates the use of quantum light for engineering poor man's MBSs with cavity embedding.

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