Entanglemons: Cross-platform protected qubits from entanglement
arXiv:2409.13019 · doi:10.1103/qjhp-8x6z
Abstract
A crucial ingredient for scalable fault-tolerant quantum computing is the construction of logical qubits with low error rates and intrinsic noise protection. We propose a cross-platform construction for such hardware-level noise-protection in which the qubits are protected from depolarizing (relaxation) and dephasing errors induced by local noise. These logical qubits arise from the entanglement between two internal degrees of freedom, hence - entanglemons. Our construction is based on the emergence of collective degrees of freedom from a generalized coherent state construction, similar in spirit to spin coherent states, of a set of such internally entangled units. These degrees of freedom, for a finite number of units, parametrize the quantized version of complex projective space P(3). The noise protection of the entanglemon qubit is then a consequence of a weakly coupled emergent degree of freedom arising due to the non-linear geometry of complex projective space. We present two simple models for entanglemons which are platform agnostic, provide varying levels of protection and in which the qubit basis states are the two lowest energy states with a higher energy gap to other states. We end by commenting on how entanglemons could be realized in platforms ranging from superconducting circuits and trapped ion platforms to possibly also quantum Hall skyrmions in graphene and quantum dots in semiconductors. The inherent noise protection in our models combined with the platform agnosticism highlights the potential of encoding information in additional weakly coupled emergent degrees of freedom arising in non-linear geometrical spaces and curved phase spaces, thereby proposing a different route to achieve scalable fault-tolerance.
15+5 pages, 6 figures; revised version closer to published one; comments welcome
References in corpus (33)
- Magic-angle graphene superlattices: a new platform for unconventional superconductivity
- Correlated Insulator Behaviour at Half-Filling in Magic Angle Graphene Superlattices
- Charge insensitive qubit design derived from the Cooper pair box
- Topological quantum memory
- Trapped-Ion Quantum Computing: Progress and Challenges
- Logical quantum processor based on reconfigurable atom arrays
- Superconducting Circuits and Quantum Information
- Programmable Quantum Simulations of Spin Systems with Trapped Ions
- Fluxonium: single Cooper pair circuit free of charge offsets
- Semiconductor Spin Qubits
- High threshold universal quantum computation on the surface code
- Manipulation and Detection of a Trapped Yb+ Ion Hyperfine Qubit
- High-threshold and low-overhead fault-tolerant quantum memory
- Universal quantum computation with spin-1/2 pairs and Heisenberg exchange
- Relaxation, dephasing, and quantum control of electron spins in double quantum dots
- Graphene integer quantum Hall effect in the ferromagnetic and paramagnetic regimes
- Electron interactions in graphene in a strong magnetic field
- Phase diagram for the quantum Hall state in monolayer graphene
- Skyrmion Qubits: A New Class of Quantum Logic Elements Based on Nanoscale Magnetization
- Protected gates for superconducting qubits
- Charged Skyrmions and Topological Origin of Superconductivity in Magic Angle Graphene
- Internal modes of a skyrmion in the ferromagnetic background in chiral magnets
- Moving beyond the transmon: Noise-protected superconducting quantum circuits
- Symmetry breaking and skyrmionic transport in twisted bilayer graphene
- Quantum fluctuations stabilize Skyrmion textures
- Skyrmions in twisted bilayer graphene: stability, pairing, and crystallization
- Entanglement Skyrmions in multicomponent quantum Hall systems
- SU(4) Skyrmions in the Quantum Hall State of Graphene
- From electrons to baby skyrmions in Chern ferromagnets: A topological mechanism for spin-polaron formation in twisted bilayer graphene
- Hardware implementation of quantum stabilizers in superconducting circuits
- Riemann meets Goldstone: magnon scattering off quantum Hall skyrmion crystals probes interplay of symmetry breaking and topology
- Zero point fluctuations for magnetic spirals and Skyrmions, and the fate of the Casimir energy in the continuum limit
- Entanglement smectic and stripe order