Nathaniel Selub, Aditya Bhardwaj, Ethan Lake • Published: 2026-09-10
We construct the first fully spatially local fault-tolerant quantum computer based on topological codes in fewer than four spatial dimensions. Our construction is a two-dimensional architecture that uses only geometrically local quantum and classical operations, bounded-speed classical communication and computation, and a constant density of quantum and classical resources. The core component is a...
Yunxin Tang, Zixuan Huo, Junxiang Huang, Zhou You, Zhirao Wang, Zhenai Ding, Yumeng Zeng, Yangyu Lu, Yiming Huang, Zongkang Zhang, Haipeng Xie, Ying Li, Jinzhao Sun, Xiao Yuan, Yuan Yao • Published: 2026-09-10
The execution of useful quantum algorithms on fault-tolerant processors requires more than a mapping from logical gates to encoded operations: the spatial organization, non-Clifford resource supply, and execution schedule must also be determined while keeping physical overhead within practical limits. Although the theoretical hierarchy from logical circuits to fault-tolerant operations is well est...
Ilhwan Kim, Yong-Su Kim, Kwang Jo Lee, Hyukjoon Kwon, Yosep Kim, Hyang-Tag Lim • Published: 2026-09-10
Distributed quantum computing offers a scalable route to quantum information processing by entangling spatially separated processors. Although gate teleportation enables universal computation across distributed nodes, it requires repeated consumption of high-fidelity Bell pairs, ancillary qubits, and real-time feedforward, which imposes significant overhead and reduces fidelity. However, many vari...
M. Saffman • Published: 2026-08-31
Neutral atom qubits are one of the leading approaches for implementation of a large scale quantum computer. The original proposals for neutral atom qubits were formulated more than 25 years ago, with first demonstrations of a universal gate set following 10 years later. In the last few years the performance and scale of neutral atom qubit arrays has developed at a rapid pace leading to demonstrati...
Sanaa Sharma, Yutaka Hirano, Akihisa Goban, Hayata Yamasaki, Shinichi Sunami, Prakash Murali • Published: 2026-09-09
Neutral-atom arrays are a leading qubit technology for large-scale, fault-tolerant quantum computing (FTQC). A dominant error source on this platform is qubit loss, which accrues with every operation and movement. The presence of loss undermines the promises of existing architectural work. Standard error correction targets stochastic Pauli errors and cannot correct loss, so most FTQC performance a...
Niccolò Laurora, Matteo Bina, Giulia Ferrini, Alessandro Ferraro • Published: 2026-09-09
Non-Gaussian interactions are a key ingredient for achieving universality in continuous-variable quantum computation, yet their experimental characterization and the validation of their correct implementation remain challenging tasks. In this work, we focus on a three-mode non-Gaussian trilinear Hamiltonian that has recently been realized in superconducting microwave platforms, and present a compr...
Adam Bednorz, Josep Batle, Tomasz Białecki, Jarosław K. Korbicz • Published: 2025-06-10
We have constructed and run a Bell test of local realism focusing on the objectivity criterion. Objectivity means that the outcomes are confirmed macroscopically by a few observers at each party. The IBM Quantum and IonQ devices turn out to be sufficiently accurate to pass such an extended Bell-type test, although at the price of communication loopholes and residual but statistically significant s...
Kazuhiro Seki, Yuta Kikuchi, Tomoya Hayata, Seiji Yunoki • Published: 2026-01-13
We demonstrate a dissipative protocol for ground-state preparation of a quantum spin chain on a trapped-ion quantum computer. As a first step, we derive a Kraus representation of a dissipation channel for the protocol recently proposed by Ding et al. [Phys. Rev. Res. 6, 033147 (2024)] that still holds for arbitrary temporal discretization steps, extending the analysis beyond the Lindblad dynamics ...
Owen Allison, Luke Coffman • Published: 2026-09-08
Determining the highest amount of noise that quantum circuits can handle is an interesting and crucial task in the development of fault-tolerant quantum computation. Previous work has constrained this upper limit for local depolarizing noise to $\approx 45~\%$ for circuits constructed using the universal Clifford with T gate set by finding the noise threshold where the gate set loses universality....
Srushti Patil, Susan X. Chen, Andreas Juul Bay-Smidt, Stefan Alaric Schäffer, Peter Krogstrup, Stefano Paesani, Gemma C. Solomon • Published: 2026-09-08
The compilation of an algorithm can vary significantly with the choice of physical hardware platform and error correction model. Yet, current compilation frameworks typically commit to a single architecture-hardware configuration, making it difficult to assess resource estimates across platforms. We present a platform-aware compilation framework that re-compiles a quantum circuit into a hardware-c...