The need for interaction mechanisms between qubits across
Research gap analysis derived from 3 physics papers in our local library.
The gap
The need for interaction mechanisms between qubits across a range of length scales. The limitation of direct interaction mechanisms to a separation of 100-200 nm. The challenge of scaling up quantum computing architectures.
Evidence profile
Sourced from the stated research gap and stated challenges of the source papers, classified as general, drawn from work published between 2024 and 2026, spanning 3 journals. Those papers have been cited 51 times in total.
Research trend
Established — well-defined area with open sub-problems.
Supporting evidence — 4 representative gaps
- Quantum Computing: Next-Generation Computational Paradigm (2026) · International Journal for Research in Applied Science and Engineering Technology · doi
The physical limitations of classical transistor scaling and the inherent intractability of certain mathematical problems drive the need for quantum computing. The current state of the industry is defined by the Noisy Intermediate-Scale Quantum (NISQ) era.
generalstated research gapKeywords: physical limitations classical transistor scaling inherent intractability certain - Quantum Computing: Next-Generation Computational Paradigm (2026) · International Journal for Research in Applied Science and Engineering Technology · doi
The physical limitations of classical transistor scaling. The inherent intractability of certain mathematical problems. The need for a multi-layered system architecture to bridge the gap between high-level algorithmic intent and low-level physical qubit control.
generalstated challengesKeywords: physical limitations classical transistor scaling inherent intractability certain - Cavity-mediated iSWAP oscillations between distant spins (2024) · Nature Physics · cited 51× · doi
The need for interaction mechanisms between qubits across a range of length scales. The limitation of direct interaction mechanisms to a separation of 100-200 nm. The challenge of scaling up quantum computing architectures.
generalstated research gapKeywords: need interaction mechanisms between qubits across range length - Réalisation physique finie des circuits quantiques Version 2 — Cadre thermodynamique informationnel et partitionnement modulaire à l'échelle de 100 qubits PROJET OECQ — Optimisation Énergétique des Circuits Quantiques (2026) · Zenodo (CERN European Organization for Nuclear Research) · doi
The paper identifies a gap in the development of quantum circuits, specifically the need for a framework that can manage quantum sobriety. The paper identifies a gap in the scaling up of quantum circuits to 100 qubits and photonics modes.
generalstated research gapevidence 5/5Keywords: paper identifies gap development quantum circuits specifically need
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