collaborators

18 papers

quant-ph2026

Fault-tolerant distributed quantum computing with a single nucleus per node

Yotam Vaknin, Shoham Jacoby, Shoham Jaocby +3

Distributed quantum computing interconnects small, high-quality nodes through optical links, but this architecture carries a pronounced asymmetry: in-node gates and measurements ar…

quant-ph2026

PIQC: Scalable Distributed Quantum Computing via Photonic Integration of Designed Molecular Quantum Nodes

Anna Aubele, Gregor Bayer, Tim R. Eichhorn +16

There is a growing consensus that large-scale, fault-tolerant quantum computing (FTQC) necessitates high-fidelity photonic interconnects to overcome the scaling limits of monolithi…

quant-ph2026

Fast, High-Fidelity Erasure Detection of Dual-Rail Qubits with Symmetrically Coupled Readout

Jimmy Shih-Chun Hung, Arbel Haim, Mouktik Raha +14

Erasure qubits are a promising platform for implementing hardware-efficient quantum error correction. Realizing the error-correction advantages of this encoding requires frequent m…

quant-ph2026

Fast measurement of neutral atoms with a multi-atom gate

Yotam Vaknin, Ran Finkelstein, Ofer Firstenberg +1

Measurement time represents a critical bottleneck limiting the operational speed of neutral atom quantum computers, as it cannot be accelerated through parallelization like other q…

quant-ph2026

Readout-induced degradation of transmon lifetimes: interplay of TLSs and qubit spectral reshaping

Ziwen Huang, Jimmy Shih-Chun Hung, Mouktik Raha +9

Measurement backaction degrades dispersive readout of superconducting qubits even at modest drive strengths, often via the reduction of qubit lifetimes during readout. In this work…

quant-ph2026

Optimal quantum metrology protocols with erasure qubits

Michal Arieli, Alex Retzker, Tuvia Gefen

We investigate the precision limits and optimal protocols for sensing single qubit signals in the presence of erasure noise. We study a hierarchy of precision limits achievable wit…