Quantum Chip Co-Design for Fidelity and Entanglement Preservation
- URL: http://arxiv.org/abs/2511.04194v1
- Date: Thu, 06 Nov 2025 08:52:56 GMT
- Title: Quantum Chip Co-Design for Fidelity and Entanglement Preservation
- Authors: Ahmad Salmanogli, Hesam Zandi,
- Abstract summary: This study introduces a superconducting quantum chip architecture designed to preserve entanglement and readout fidelity.<n>Strong qubit qubit coupling enhances entanglement but often leads to undesired crosstalk, dephasing, and reduced measurement fidelity.<n>We propose a hybrid multiqubit configuration consisting of nine transmon qubits interconnected via a flux tunable qubit and a network of distributed resonators.
- Score: 0.0
- License: http://creativecommons.org/licenses/by-sa/4.0/
- Abstract: This study introduces a superconducting quantum chip architecture designed to simultaneously preserve entanglement and readout fidelity, addressing one of the key trade-offs in the development of scalable quantum hardware. In conventional quantum circuits, strong qubit qubit coupling enhances entanglement but often leads to undesired crosstalk, dephasing, and reduced measurement fidelity. To mitigate these effects, we propose a hybrid multiqubit configuration consisting of nine transmon qubits organized into interior and exterior groups, interconnected via a flux tunable qubit and a network of distributed resonators. The interior qubits along with tunable qubit form an entanglement core, while the exterior qubits operate in the dispersive regime under large detuning to enable readout. The degree of entanglement can be dynamically tuned by adjusting the coupling between the central tunable qubit and the interior qubits. The total Hamiltonian includes all significant coupling contributions, encompassing effective exchange interactions among interior and exterior qubits, as well as their mediated couplings through interface resonators. By numerically solving the complete Hamiltonian alongside the Lindblad master equation, the system dynamics are characterized, allowing evaluation of both spectroscopic features and separation fidelity. Simulation results demonstrate that the proposed design maintains strong entanglement by creating the avoided-crossing region while sustaining measurement fidelity around 0.995 under realistic noise conditions. These findings confirm that entanglement strength and readout fidelity can be co-optimized within a single, reconfigurable architecture, establishing a viable route toward high-performance and scalable superconducting quantum processors.
Related papers
- Constructing Arbitrary Coherent Rearrangements in Optical Lattices [36.94429692322632]
Coherent control of motional degrees of freedom of ultracold atoms in optical lattices offers a promising route towards programmable quantum dynamics with massive particles.<n>We propose and analyze a scheme for implementing coherent rearrangement of ultracold atoms, corresponding to arbitrary unitary transformations on single-particle motional states.
arXiv Detail & Related papers (2026-03-04T15:57:12Z) - Crosstalk-Resilient Quantum MIMO for Scalable Quantum Communications [40.44880302154388]
Crosstalk arises when physically coupled quantum modes interfere, degrading signal fidelity.<n>We propose a mitigation strategy based on encoding discrete-variable quantum information into continuous-variable modes.<n>We prove the existence of a gauge-fixing decoder enabling recovery of the logical information.
arXiv Detail & Related papers (2025-06-26T18:40:26Z) - Decoherence and fidelity enhancement during shuttling of entangled spin qubits [45.05458154702236]
We show that noises acting on the shuttled spins exhibit complex and unusual correlations.<n>These correlations can also be exploited to enhance the shuttling fidelity.<n>We show that by encoding logical qubit in a state of two consequtively shuttled entangled spins, high fidelity can be achieved even for very slow shuttling.
arXiv Detail & Related papers (2025-06-24T14:37:39Z) - Optimal absorption and emission of itinerant fields into a spin ensemble memory [39.74150797598488]
This work focuses on spin-based quantum memories, where itinerant electromagnetic fields are stored in large ensembles.<n>We develop a cascaded quantum model to describe both absorption and emission processes.<n> Numerical simulations are presented in the context of microwave-frequency quantum memories interfaced with superconducting quantum processors.
arXiv Detail & Related papers (2025-06-06T14:16:54Z) - Phonon-Coupled Hole-Spin Qubits in High-Purity Germanium: Design and Modeling of a Scalable Architecture [0.0]
We present a design and modeling of a scalable quantum processor architecture utilizing hole-spin qubits defined in gate-controlled germanium (Ge) quantum dots.<n>The architecture exploits the strong, electrically tunable spin-orbit interactions intrinsic to hole states in Ge, integrated with high-quality phononic crystal cavities (PnCCs) to enable fully electrical qubit control and phonon-mediated coupling.
arXiv Detail & Related papers (2025-04-16T16:14:30Z) - Scalable Robust Quantum Control for Semiconductor Spin Qubits with Always-on Couplings [5.417763860308844]
We demonstrate a robust quantum control framework that enables high-fidelity gate operations in semiconductor spin qubit systems with always-on couplings.<n>Our approach suppresses both static coupling noise and time-dependent crosstalk without requiring high on/off ratio tunable couplers.
arXiv Detail & Related papers (2025-03-17T04:03:31Z) - Space-Time-Coupled Qubits for Enhanced Superconducting Quantum Computing [0.0]
We introduce a paradigm leveraging a space-time-modulated cryogenic-compatible Josephson metasurface to enable polychromatic qubit coupling.<n>By isolating qubit couplings into distinct spectral channels, the cryogenic-compatible metasurface mitigates crosstalk and environmental decoherence.<n>This study establishes the potential of space-time-modulated cryogenic-compatible Josephson metasurfaces as a transformative platform for next-generation quantum computing.
arXiv Detail & Related papers (2025-01-28T11:53:14Z) - Enhancing the Coherence of Superconducting Quantum Bits with Electric
Fields [62.997667081978825]
We show that qubit coherence can be improved by tuning defects away from the qubit resonance using an applied DC-electric field.
We also discuss how local gate electrodes can be implemented in superconducting quantum processors to enable simultaneous in-situ coherence optimization of individual qubits.
arXiv Detail & Related papers (2022-08-02T16:18:30Z) - Demonstration of tunable three-body interactions between superconducting
qubits [38.98439939494304]
We present a superconducting circuit architecture in which a coupling module mediates 2-local and 3-local interactions.
The 3-local interaction is coherently tunable over several MHz via the coupler flux biases and can be turned off.
arXiv Detail & Related papers (2022-05-09T20:23:43Z) - A quantum processor based on coherent transport of entangled atom arrays [44.62475518267084]
We show a quantum processor with dynamic, nonlocal connectivity, in which entangled qubits are coherently transported in a highly parallel manner.
We use this architecture to realize programmable generation of entangled graph states such as cluster states and a 7-qubit Steane code state.
arXiv Detail & Related papers (2021-12-07T19:00:00Z) - Strong parametric dispersive shifts in a statically decoupled
multi-qubit cavity QED system [0.4915375958667782]
Cavity quantum electrodynamics (QED) with in-situ tunable interactions is important for developing novel systems for quantum simulation and computing.
Here, we couple two transmon qubits to a lumped-element cavity through a shared dc-SQUID.
We show that by parametrically driving the SQUID with an oscillating flux it is possible to independently tune the interactions between either of the qubits and the cavity dynamically.
arXiv Detail & Related papers (2021-03-16T18:46:57Z) - Long-range connectivity in a superconducting quantum processor using a
ring resonator [0.0]
We introduce a novel superconducting architecture that uses a ring resonator as a multi-path coupling element with the qubits uniformly distributed throughout its circumference.
We theoretically analyse the qubit connectivity and experimentally verify it in a device capable of supporting up to twelve qubits where each qubit can be connected to nine other qubits.
arXiv Detail & Related papers (2020-12-17T09:34:14Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.