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Four-Qubit Kernel Preserves Geometry on IBM Quantum Hardware to 98.9%
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Four-Qubit Kernel Preserves Geometry on IBM Quantum Hardware to 98.9%

Rostyslav Sipakov of Kyiv National University of Construction and Architecture has demonstrated a centered kernel alignment (CKA) ranging from 0.933 to 0.989 within a four-qubit quantum kernel executed on IBM’s ibm_fez hardware, despite known imperfections in the system. The research measured this using full-matrix centered kernel alignment, revealing a substantial but incomplete degree of geometry preservation given the inherent challenges of near-term quantum devices. While dynamical decoupling alone was not distinguishable from baseline at the frozen-window scale, gate twirling demonstrably enhanced geometry preservation across multiple diagnostic metrics. The most faithful configuration had the lowest centered kernel, target alignment, a reversal of expectations suggesting a complex interplay between hardware distortion and signal recovery; as the paper states, these are “descriptive results for single jobs on one backend, not causal mitigation-efficacy estimates.” A substantial degree of geometric preservation was observed, with full-matrix centered kernel alignment (CKA) scores ranging from 0.933, 0.989. This work focused on reconstructing the kernel geometry, rather than assessing any potential quantum advantage in a downstream task, establishing a baseline for future studies. The research team employed three execution configurations: a baseline, dynamical decoupling alone, and gate twirling alone, to assess noise mitigation strategies. Dynamical decoupling alone was not separated from baseline at the frozen-window scale, while gate twirling improved geometry preservation, showing jackknife-resolved improvements in Spearman correlation, mean absolute error, and full-matrix CKA diagnostics. The most faithful configuration had the lowest centered kernel, target alignment, even falling below reference points for both statevector and hardware. The team interprets this reversal as a normalization property of hardware distortion, suggesting a complex relationship b

Aug 5, 2026

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A First-principles Computational Framework for Quantum Decoherence in Complex Diamond Spin Environments
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A First-principles Computational Framework for Quantum Decoherence in Complex Diamond Spin Environments

--> Quantum Physics arXiv:2608.02846 (quant-ph) [Submitted on 3 Aug 2026] Title:A First-principles Computational Framework for Quantum Decoherence in Complex Diamond Spin Environments Authors:Huijin Park, Ha-young Jeong, Hyeonsu Kim, Christoph Findler, Fedor Jelezko, Sangwon Oh, Junghyun Lee, Giulia Galli, Hosung Seo View a PDF of the paper titled A First-principles Computational Framework for Quantum Decoherence in Complex Diamond Spin Environments, by Huijin Park and 8 other authors View PDF Abstract:Quantum decoherence induced by defects remains a major limitation for solid-state quantum technologies, yet predicting decoherence in realistic materials remains computationally challenging. Complex defect populations are often approximated as homogeneous spin baths, obscuring the role of defect-specific electronic structure and spin dynamics. Here, we develop a predictive framework for decoherence in diamond by combining first-principles electronic-structure calculations, quantum many-body spin-bath simulations, and experimental validation. The framework incorporates defect-resolved spin Hamiltonians and heterogeneous spin baths containing multiple paramagnetic defect species. Using diamond nitrogen-vacancy ensembles as a model platform, we investigate mixed nitrogen-, vacancy-, and hydrogen-related defect environments. We show that decoherence depends not only on defect density but also on defect identity and bath composition, whose distinct electronic structures, hyperfine interactions, and spin dynamics produce different coherence behavior. Heterogeneous defect populations can either suppress or enhance decoherence, producing trends unexplained by homogeneous-bath models. Magnetic-field-dependent Hahn-echo measurements on samples with different defect concentrations validate the framework. The calculations reproduce the observed coherence times and stretched-exponential decay behavior across a broad magnetic-field range and identify vacancy-related defects as crit

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IonQ and Sandia team up to build quantum computers for US securityquantum-computing

IonQ and Sandia team up to build quantum computers for US security

IonQ (NYSE: IONQ) and Sandia National Laboratories have formalized a collaboration with a memorandum of understanding, committing to jointly develop quantum technologies for U.S. national security. This partnership will advance quantum computing and networking capabilities at New Mexico’s Quantum Demonstration Facility, a hub for public-private innovation. “Big breakthroughs often happen when government and industry work together,” said IonQ Chairman and CEO Niccolo de Masi, adding that such partnerships “could help shape the future of quantum technology and play an important role in our economic and national security.” IonQ and Sandia will focus on co-design efforts, building on a history that includes Sandia fabricating the ion traps for IonQ’s earliest quantum computers. IonQ and Sandia Co-Design for U.S. National Security A collaboration between IonQ and Sandia National Laboratories formalizes a commitment to rapidly advance quantum computing capabilities for national security applications, building upon decades of prior work between the two entities. Sandia previously fabricated the ion traps foundational to IonQ’s earliest quantum computers, establishing a long-standing technical relationship now broadened by a new memorandum of understanding. This agreement signifies a deliberate strategy to integrate hardware and applications teams, accelerating the scaling of quantum computers and their interconnectivity. IonQ’s expanded presence in New Mexico supports a growing ecosystem dedicated to developing and deploying quantum systems, while the facility offers impartial verification of pathways toward utility-scale quantum computers, which is crucial for ensuring the reliability and performance of quantum systems intended for critical government missions. The MOU outlines exploration of technical areas including system optimization, device development, and characterization, all aligned with U.S. “Our partnership with IonQ leverages the strengths of both organization

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Florida Atlantic adds quantum to its executive education lineupquantum-computing

Florida Atlantic adds quantum to its executive education lineup

Florida Atlantic University will be the first in the state to combine on-site quantum computing access with a business-focused certificate program, indicating a shift from research to practical application training. The eight-week “Quantum Computing: Business and Sourcing Strategy” course quickly upskills professionals to assess opportunities and risks presented by the emerging technology. “FAU’s decision to launch this course reflects a convergence of several important trends,” said Daniel Gropper, Ph. D., dean of FAU’s College of Business and Kaye Family Professor, “including the growth of high-tech industries in South Florida and the university’s commitment to preparing business leaders for emerging technologies.” The program equips leaders to strategically prepare for quantum computing’s influence on technology investment and organizational decision-making. FAU Launches “Quantum Computing: Business and Sourcing Strategy” Certificate Florida Atlantic University is now offering a business-focused certificate program supported by its recent installation of a dedicated, on-site quantum computer; this marks the first such pairing at a Florida university. Participants will analyze how organizations can identify quantum opportunities and build frameworks for responsible adoption, extending beyond purely research-based applications. The program’s development responds to a growing high-tech sector in South Florida and a university-wide commitment to future-proof business leadership, according to Daniel Gropper, Ph. “Quantum computing represents a significant evolution in how we think about technology and problem-solving, and this program gives professionals the opportunity to better understand its potential, evaluate its business applications and explore how organizations can strategically prepare for what comes next.” The course, led by informational technology experts, requires no prior quantum science background, focusing instead on strategic implications for leaders

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India National Quantum Mission

Explore India's ₹6,003 Crore quantum initiative: 4 thematic hubs, leading startups, and the latest developments in India's quantum ecosystem

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