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May 3, 2026.

60 quantum research items collected on 2026-05-03; hardware, control, and industry signals routed.

113 items · Quantum, Chips, Power · All briefs

Quantum

60 quantum research items collected on 2026-05-03; hardware, control, and industry signals routed.

Hardware and Error Correction

  • Quantum Lattice Boltzmann Solutions for Transport under 3D Spatially Varying Advection on Trapped Ion Hardware

    The Quantum Lattice Boltzmann Method (QLBM) has emerged as one of the most promising quantum computing approaches for the numerical simulation of problems in computational fluid dynamics (CFD). The dynamics is formulated in terms of mesoscopic particle distribution functions governed by a discrete Boltzmann transport equation, comprising local streaming and collision operati...

  • Branch-Resolved Characterization of Feed-Forward Error in Dynamic Teleportation via Classical Choi Shadows

    Mid-circuit measurement and classical feed-forward are essential primitives for dynamic-circuit teleportation on superconducting quantum processors. However, the error associated with measurement-conditioned corrective operations remains poorly understood when evaluated with respect to individual measurement branches. In this paper, we present a framework for characterizing...

  • Macroscopic photon counting beating the Poisson noise limit

    Photon counting is a cornerstone of quantum optics. Here, we demonstrate precisely counting from 0 to over 9000 photons, beating the Poisson noise limit by at least $4.1~\mathrm{dB}$ across this range. We achieve sub-single-photon precision up to 276 photons per pulse. To do so, we multiplex eight intrinsically photon-number-resolving superconducting nanowire single-photon d...

  • Parametrically Driven iSWAP Gate Using a Capacitively Shunted Double-Transmon Coupler at the Zero-Flux Sweet Spot

    A double-transmon coupler (DTC) enables a fast, high-fidelity CZ gate between two highly detuned, fixed-frequency transmon qubits. Moreover, a recently proposed capacitively shunted DTC (CSDTC) realizes a small residual ZZ interaction over a wide flux-bias range around zero flux, eliminating the necessity of static flux biasing while maintaining high CZ-gate fidelity. Howeve...

  • Experimental detection of entanglement in multimode Gaussian states from high-order intensity correlation moments

    Quantum universal invariants of a Gaussian state's covariance matrix, which can be derived from intensity correlation moments, have been adopted to characterize the entanglement properties of Gaussian states via the positive partial transpose criterion, also known as the Peres-Horodecki separability criterion. Such intensity correlation moments enable the extraction of infor...

  • Magnonic Gottesman-Kitaev-Preskill states

    Bosonic quantum error correction encodes a logical qubit in an oscillator, avoiding the hardware overhead of large qubit arrays. Among such encodings, Gottesman-Kitaev-Preskill (GKP) states are paticularly powerful because their phase-space grid structure protects against small displacement errors simultaneously in both conjugate quadratures. Here we provide the first protoc...

  • Galilean boost invariance does not survive the trace: symmetry breaking in open quantum systems

    Tracing out a Galilean-invariant Caldeira-Leggett environment breaks Galilean boost covariance of the reduced dynamics, while spatial translations and rotations survive intact. An operator-level analysis of the exact Hu-Paz-Zhang master equation localizes the violation entirely in the dissipative anticommutator term, scaling with the damping coefficient $Γ(t)f(t)$. The fluct...

  • Demonstration of Exponential Quantum Speedup with Constant-Depth Compiled Circuits for Simon's Problem

    We demonstrate exponential quantum speedup for a restricted-Hamming-weight version of Simon's problem on present-day superconducting quantum processors by introducing a hardware-aware compilation strategy that compiles the quantum part of each Simon query circuit to constant depth. The resulting compiled circuits have $O(1)$ depth and linear connectivity, map directly onto c...

Control and Quantum-AI Integration

  • Defending Quantum Classifiers against Adversarial Perturbations through Quantum Autoencoders

    Machine learning models can learn from data samples to carry out various tasks efficiently. When data samples are adversarially manipulated, such as by insertion of carefully crafted noise, it can cause the model to make mistakes. Quantum machine learning models are also vulnerable to such adversarial attacks, especially in image classification using variational quantum clas...

  • Learning quantum disentanglement scheduling from reduced states via modular hybrid policies

    Quantum control with restricted state access is central to near-term quantum devices, where full wave-function information is unavailable. We study this problem through multiqubit disentanglement scheduling from partial observations, where a controller receives only two-qubit reduced density matrices and selects which qubit pair to disentangle at each step. We introduce a mo...

  • Geometric complexity in thermodynamics

    The third law of thermodynamics forbids cooling a physical system to absolute zero in a finite number of operational steps. Although this unattainability principle has been quantified for specific state-to-state transitions, a universal, dynamics-independent bound for implementing a state-agnostic reset map remains elusive. In this work, we unveil the fundamental limits of p...

  • Effective Noise Mitigation via Quantum Circuit Learning in Quantum Simulation of Integrable Spin Chains

    We propose a noise-mitigation quantum simulation strategy for near-term quantum devices based on Quantum Circuit Learning (QCL), which is in particular effective for integrable quantum spin chains. The method trains a shallow variational circuit to approximate a deeper time-evolution circuit by learning the conserved charges and only a small amount of dynamical information i...

  • Fixed-PVM Born Rule Uniqueness from Fisher Non-Expansion and Operational Calibration

    Fix a finite dimension $d \geq 2$ and a fixed rank-1 PVM $M=\{|e_1\rangle\langle e_1|,\ldots,|e_d\rangle\langle e_d|\}$ on ${\bf C}^d$. Let $P_M:\mathbb{CP}^{d-1}\toΔ^{d-1}$ be a readout map on pure states. We prove that three primitives force the Born rule for this fixed measurement: (i) square-root regularity of $R_M=\sqrt{P_M}$ along Fubini-Study geodesics, (ii) the unive...

  • Q3SAT-GPT: A Generative Model for Discovering Quantum Circuits for the 3-SAT Problem

    This work introduces Q3SAT-GPT, a generative model for discovering quantum circuits for the Max-E3-SAT problem. Our method learns from high-performing QAOA-style ansätze to directly generate candidate circuits. To create high-quality supervision, we also introduce Mosaic Adaptive QAOA (MosaicADAPT-QAOA), an adaptive strategy for constructing low-depth QAOA circuits by select...

  • Qruise Collaborates with Goethe University on NV Center Systems

    <a href="https://thequantuminsider.com/2026/05/01/qruise-nv-centre-goethe-university-collaboration/" rel="nofollow" title="Qruise Collaborates with Goethe University on NV Center Systems"><img alt="Automated workflows simplify calibration, characterisation, and control of NV centre QPUs" class="webfeedsFeaturedVisual wp-post-image" height="450" src="https://thequantuminsider...

Commercial and Industry Context

  • Observation of Vinen turbulence during far-from-equilibrium Bose-Einstein condensation

    Relaxation of far-from-equilibrium quantum fluids, intimately related to the emergence of long-range order, is theoretically associated with the decay of a turbulent isotropic tangle of vortex lines. We observe and study such decaying quantum turbulence in a homogeneous 3D atomic Bose gas. Using matter-wave techniques to magnify the gas density distribution, and then imaging...

  • Deep Strong light-matter Coupling in 3D Kane Fermions

    Deep strong light-matter coupling represents an extreme non-perturbative regime of quantum electrodynamics, in which the interaction strength exceeds the bare frequencies of the uncoupled systems. The ground state features strong quantum correlations between photons and matter excitations, and new cavity-driven phase transitions are expected to occur. Whether a superradiant...

  • Towards High Performance Quantum Computing (HPQ): Parallelisation of the Hamiltonian Auto Decomposition Optimisation Framework (HADOF)

    Practical applicability of quantum optimisation on near term devices is constrained by limited qubit counts and hardware noise, which restricts the scalability of quantum optimisation algorithms for combinatorial problems. The simulation of large quantum circuits is also difficult and constrained by memory requirement. The Hamiltonian Auto Decomposition Optimisation Framewor...

  • Compressed Sensing for Efficient Fidelity Estimation of GHZ States

    Accurately characterizing multipartite entangled states is a critical challenge in quantum information processing. In this work, we focus on applying compressed sensing techniques to efficiently estimate the fidelity of Greenberger-Horne-Zeilinger (GHZ) states. By exploiting the inherent sparsity of these states, our compressed sensing protocol drastically reduces the measur...

  • IonQ CEO Says 2025 Marked Turning Point for Quantum Commercialization

    <a href="https://thequantuminsider.com/2026/05/02/ionq-ceo-says-2025-marked-turning-point-for-quantum-commercialization/" rel="nofollow" title="IonQ CEO Says 2025 Marked Turning Point for Quantum Commercialization"><img alt="" class="webfeedsFeaturedVisual wp-post-image" height="900" src="https://thequantuminsider.com/wp-content/uploads/2026/05/ionq_hero_final.png" style="di...

  • Liquid Instruments Expands with $50M Investment Round

    <a href="https://thequantuminsider.com/2026/05/02/liquid-instruments-50m-series-c-keysight-nrfc/" rel="nofollow" title="Liquid Instruments Expands with $50M Investment Round"><img alt="Liquid instruments logo on plain white background" class="webfeedsFeaturedVisual wp-post-image" height="361" src="https://thequantuminsider.com/wp-content/uploads/2026/04/2026-04-30_18-51.png"...

  • Podcast with Joab Rosenberg, Partner, Deep33

    <a href="https://thequantuminsider.com/2026/05/02/podcast-with-joab-rosenberg-partner-deep33/" rel="nofollow" title="Podcast with Joab Rosenberg, Partner, Deep33"><img alt="" class="webfeedsFeaturedVisual wp-post-image" height="540" src="https://thequantuminsider.com/wp-content/uploads/2026/04/Joab.jpg" style="display: block; margin: auto; margin-bottom: 10px;" width="540" /...

  • IBM and Dallara to Advance AI and Quantum-Powered Design for High-Performance Vehicles

    <a href="https://thequantuminsider.com/2026/05/01/ibm-and-dallara-to-advance-ai-and-quantum-powered-design-for-high-performance-vehicles/" rel="nofollow" title="IBM and Dallara to Advance AI and Quantum-Powered Design for High-Performance Vehicles"><img alt="IBM" class="webfeedsFeaturedVisual wp-post-image" height="720" src="https://thequantuminsider.com/wp-content/uploads/2...

Unrouted Items

  • Reorganizing Quantum Measurement Records Improves Time-Series Prediction

    Near-term quantum computers are accessed through repeated circuit executions, which produce finite measurement records rather than exact deterministic outputs. In quantum reservoir computing, these records are converted to feature vectors for a classical readout. The standard expectation-value approach averages all shots from one labeled time step into a single feature vecto...

  • Optimal current-based sensing of phonon temperature using a finite reservoir

    In realistic nanoscale transport set-ups, electron-phonon coupling leads to the exchange of heat between phonon baths and electronic reservoirs with finite heat capacities. Such exchange affects the finite reservoir's temperature. However, this sensitivity of the finite reservoir temperature to the exchange of heat with the finite reservoir has remained unexplored for thermo...

  • Domain-wall melting in all-to-all QSSEP from random-matrix theory

    We study the melting of a domain wall in the quantum simple exclusion process with all-to-all hoppings (a.k.a. the charged SYK$_2$ model). We show that the real-time dynamics of physical quantities of interest can be obtained exploiting spectral results in random matrix theory. We first show that the eigenvalues of the correlation matrix corresponding to the initially charge...

  • Weak-to-Strong Measurement Transition with Thermal Instabilities

    Quantum measurement is physically realized through a finite dynamical interaction between a system and a measuring apparatus, giving rise to a continuous transition from weak to strong regimes. While this crossover is well understood under ideal conditions, the combined role of thermal instabilities and pre- and post-selection open dynamics has not been systematically addres...

  • Nodal algebraic curves and entropy diagnostics in degenerate two-dimensional harmonic-oscillator shells

    Degenerate quantum eigenspaces can support substantial changes in nodal geometry at fixed energy. We show that, for the two-dimensional isotropic harmonic oscillator, this restructuring is organized by the Hermite-constrained algebraic curve $P_N(x,y)=0$ appearing in every real shell state, $ψ_N=e^{-αr^2/2}P_N(x,y)$. Finite singularities, $P_N=\nabla P_N=0$, and projective d...

  • Source-independent quantum key distribution without pre-sending entanglement

    Quantum key distribution (QKD) theoretically offers information-theoretic security. The prevailing approach is the prepare-and-measure BB84 protocol, which implements QKD using conventional laser rather than single-photon source via the decoy-state method. However, side-channel attacks targeting sources severely threaten system security. Despite extensive efforts, including...

  • g-tensor Optimization in Ge/SiGe Quantum Dots

    Planar germanium heterostructures hosting hole-spin qubits are among the leading platforms for scalable semiconductor-based quantum computing. Yet, device performance is hindered by significant quantum dot variability, which leads to uncertainty in qubit energy levels and random orientations of the spin quantization axis. Tailored control of the g-tensor offers a strategy to...

  • A No-Cloning Trade-off Between Black Hole No-Hair and Horizon Smoothness

    The black hole no-hair theorem is traditionally derived from the uniqueness theorems of general relativity. We show that a quantitative form follows from unitarity together with the standard semiclassical assumptions of horizon causality and interior accessibility. For a semiclassical black hole, we prove that the trace distance between exterior states corresponding to two s...

  • Adaptable Continuous Variable Quantum Network with Finite Size Security

    In recent years, continuous-variable quantum key distribution (CV-QKD) has become a promising paradigm for enabling secure communication among multiple end users sharing the same telecommunication backbone. CV-QKD with reverse reconciliation naturally enables scalability from conventional point-to-point links to quantum access networks based on passive quantum broadcasting c...

  • Unentangled stoquastic Merlin-Arthur proof systems: the power of unentanglement without destructive interference

    Stoquasticity, originating in sign-problem-free physical systems, gives rise to $\sf StoqMA$, introduced by Bravyi, Bessen, and Terhal (2006), a quantum-inspired intermediate class between $\sf MA$ and $\sf AM$. Unentanglement similarly gives rise to ${\sf QMA}(2)$, introduced by Kobayashi, Matsumoto, and Yamakami (CJTCS 2009), which generalizes $\sf QMA$ to two unentangled...

  • Wavelet-based multiresolution analysis of quantum fractals in confined dynamics

    Fractal structures naturally emerge in quantum systems whose initial states exhibit spatial discontinuities, a phenomenon first identified by Berry in the paradigmatic case of a particle confined in an infinite potential well. While previous analyses of quantum fractals have mainly relied on spectral decompositions and geometric scaling arguments, their quantitative characte...

  • Heisenberg-limited Hamiltonian learning without short-time control

    Characterizing quantum systems by learning their underlying Hamiltonians is a central task in quantum information science. While recent algorithmic advances have achieved near-optimal efficiency in this task, they critically rely on accessing arbitrarily short-time dynamics. This reliance poses severe experimental challenges due to finite control bandwidth and transient puls...

  • Hypergeometric Functions of Nilpotent Operators: Functional Collapse and Structural Depth at Exceptional Points

    We study hypergeometric functions of nilpotent operators in finite-dimensional settings, motivated by the algebraic structure of exceptional points in non-Hermitian quantum mechanics. Our starting point is the following exact result: if N is a nilpotent operator of index m+1 in an associative algebra over C, then every generalized hypergeometric function pFq evaluated at N r...

  • Entanglement of multi-qubit quantum graph states and studies structural properties of tripartite graphs with quantum programming

    We propose a method for constructing multi-qubit entangled quantum states representing weighted tripartite graphs. An expression for the entanglement distance for multi-qubit states corresponding to arbitrary tripartite graph structures is obtained. The entanglement of a qubit with the rest of the system in a quantum graph state is determined by the weights of the edges in t...

  • High-Girth Regular Quantum LDPC Codes from Square-Base Hypergraph Products via CPM Lifts

    We study square-base Calderbank--Shor--Steane (CSS) hypergraph-product codes as a finite-length class for regular high-girth quantum low-density parity-check (LDPC) design. For base matrices of small column weight, we give checkable conditions for regularity, rank deficiency, and short-cycle exclusion, and we present explicit column-weight-three and column-weight-four exampl...

  • Explicit Quantum Search Algorithm for the Densest k-Subgraph Problem

    This paper addresses the problem of finding the densest $k$-vertex subgraph in an arbitrary graph. This problem is NP-hard and has important applications in social network analysis, fraud detection, recommendation systems, and bioinformatics. We propose two quantum approaches to solve this problem: reduction to Quadratic Unconstrained Binary Optimization (QUBO) and using Gro...

  • Timescales for Deep and Full Thermalization

    Isolated quantum systems typically approach thermal equilibrium as described by the Eigenstate Thermalization Hypothesis (ETH). Going beyond this involves either higher order correlators (full thermalization) or the formation of state designs, i.e., the approach of moments of state ensembles after a projective measurement towards thermal equilibrium (deep thermalization). We...

  • OAM-mode sorting with a wavefront twister

    We propose an OAM sorter based on a novel optical element that we refer to as a wavefront twister. It is a generalization of the conventional wavefront rotators such as the Dove prism. However, unlike a Dove prism, which simply rotates a wavefront, the rotation generated by a wavefront twister varies linearly with radial position, resulting in the twisting of the wavefront....

  • Size-Limited Room Temperature Single-Photon Emission from Sidewall-Treated Fractional Dimension InGaN Quantum Dots: Determined by Density-of-States-Corrected Ultrafast Carrier Dynamics and Improved Signal-to-Noise Ratio

    Room-temperature single-photon emission (SPE) resulting from a biexciton-exciton cascaded decay is demonstrated for the first time from chemically and photoelectrochemically etched site-controlled In0.14Ga0.86N quantum dots (QDs) embedded in vertical GaN nanowires. Diameter-dependent biexciton-exciton dynamics are analysed to determine the eligibility of QD as a single-photo...

  • Observation of attractor transitions in active magnon-polaritons under microwatt drives

    Magnon-polaritons provide a room-temperature platform for investigating nonlinear cavity quantum electrodynamics in the microwave domain, but experimentally observing controlled transitions among distinct nonlinear attractors remains challenging in conventional passive systems, where strong external driving is usually required. Here we report the observation of attractor tra...

  • An Analytical Approach to Design Space Exploration for Cavity-Mediated Quantum State Transfer in Multi-core Architectures

    In multi-core quantum computing architectures, waveguide-mediated interconnects are essential for facilitating fast, high-fidelity quantum state transfer between qubits located in different chips. However, optimizing these systems typically relies on computationally expensive numerical simulations that offer limited physical insight. In this work, we derive exact analytical...

  • Hyperfine-resolved laser excitation and detection of nuclear isomer in trapped $^{229}$Th$^{3+}$ ions

    We present a comprehensive theoretical investigation of hyperfine-resolved excitation and detection of the low-energy isomeric state of $^{229}$Th in trapped $^{229}\mathrm{Th}^{3+}$ ions. Using a quantum master equation approach, we analyze the dependence of the isomeric population on laser linewidth, detuning, and irradiation time, showing that their proper matching is ess...

  • Quantum Magnetometry with Orientation beyond Steady-State Limits in Cavity-Magnon Systems

    We present a transient quantum sensing framework for cavity-magnon systems that circumvents the inevitable loss of initial-state quantum properties plaguing conventional steady-state protocols. Explicitly incorporating finite-time dynamics and adopting an engineered steady state as the initial condition, we derive the exact transient noise spectrum. We show that residual ini...

  • Observation of Universal Spectral Moments and the Dynamic Dispersive-to-Proliferative Transition

    In non-Hermitian systems, spectra can be maximally boundary-sensitive, yet bulk physics need not be. Here we experimentally show that spectral moments provide boundary-robust bulk observables in finite non-Hermitian lattices, even when the spectra undergo dramatic geometry-dependent reshaping due to the skin effect. Using a unified acoustic platform with full spectral recons...

  • Pauli equation in spaces of constant curvature and extended Nikiforov-Uvarov method

    We apply the extended Nikiforov-Uvarov method to the non-relativistic limit of the Dirac equation with a Coulomb potential in spaces of constant curvature. In this case, the radial equation reduces to the Heun equation, and the extended Nikiforov-Uvarov method easily yields a quantization condition which leads to necessary condition under which the resulting Heun equation ca...

  • Observation antibunching with classical light in a linear interferometer

    Understanding the boundary between classical and nonclassical phenomena is important for both fundamental researches in quantum optics and applications in quantum information. One of the most interesting research directions in this field is exploring nonclassical effects with classical light. In this paper, we will show that it is possible to observe antibunching with therma...

  • Finite Imaginary-Time Evolution for Polynomial Unconstrained Binary Optimization

    Imaginary-time evolution is a standard primitive for ground-state preparation but is nonunitary, precluding direct quantum implementation. We develop Finite Imaginary-Time Evolution (FinITE), a finite-beta construction for diagonal Pauli-Z cost Hamiltonians arising from polynomial unconstrained binary optimization (PUBO) instances, including QUBO and HUBO cases. FinITE uses...

  • Nonadiabatic Renormalization Group for Strongly Coupled Multiscale Quantum Systems

    Complex quantum systems are often multiscale in nature with strong interactions between different scales. We present a novel idea: iteratively suppressing, rather than tracing out, the fast, high-energy degrees of freedom in strongly correlated quantum systems with multiple energy scales in a non-perturbative way, termed nonadiabatic renormalization group. This leads to a qu...

  • Constructing Bulk Topological Orders via Layered Gauging

    Understanding quantum phases and phase transitions in the presence of symmetries is a central objective of quantum many-body physics. A powerful modern paradigm for investigating this problem is topological holography, which relates symmetries in $k$ dimensions to "bulk" topological orders in $(k+1)$ dimensions. While conceptually profound, most existing bulk construction me...

  • Semiclassical Ehrenfest paths in open quantum systems

    We study the semiclassical Ehrenfest trajectories in open quantum systems. We first derive in explicit form the Fokker-Planck equation that governs the time evolution of the mixing measure for a Gaussian mixture. Then, we embed the generalized Ehrenfest theorem recently obtained for open quantum systems into this phase-space picture to study the time evolution of the expecta...

  • High-key-rate Fully-Passive Quantum Access Network with Thermal Source

    To accommodate classical communication systems with progressively increasing transmission rates, quantum access networks (QAN) have undergone systematic and protocol-level optimizations in recent years, where quantum passive optical network (QPON) architectures are gaining significant attention due to their simple structure. It is challenging for the previous QAN based on ac...

  • High-Rate Free-Space Continuous-Variable QKD with Self-Referenced Passive State Preparation

    Continuous-variable quantum key distribution (CVQKD) using passive state preparation (PSP) offers low-cost, high-rate secure communication. However, the existing PSP-CVQKD scheme with a transmitted local oscillator has high photon leakage noise and poor stability, making it unsuitable for high-loss transmission. In this work, for the first time, we propose and implement a lo...

  • PsiQuantum Appoints Lip-Bu Tan to Board of Directors

    <a href="https://thequantuminsider.com/2026/05/02/psiquantum-lip-bu-tan-board-appointment/" rel="nofollow" title="PsiQuantum Appoints Lip-Bu Tan to Board of Directors"><img alt="Lip-Bu Tan" class="webfeedsFeaturedVisual wp-post-image" height="453" src="https://thequantuminsider.com/wp-content/uploads/2026/04/2026-04-30_23-14.png" style="display: block; margin: auto; margin-b...

  • What Is “Harvest Now, Decrypt Later” and Why Should You Care?

    <a href="https://thequantuminsider.com/2026/05/01/harvest-now-decrypt-later-why-should-you-care/" rel="nofollow" title="What Is &#8220;Harvest Now, Decrypt Later&#8221; and Why Should You Care?"><img alt="YQS 2026" class="webfeedsFeaturedVisual wp-post-image" height="952" src="https://thequantuminsider.com/wp-content/uploads/2026/05/6118e813-d040-43c1-9998-92a284dfd047.png"...

  • U.S. Quantum Policy Bill Advances to Full House Consideration

    <a href="https://thequantuminsider.com/2026/05/01/u-s-quantum-policy-bill-advances-to-full-house-consideration/" rel="nofollow" title="U.S. Quantum Policy Bill Advances to Full House Consideration"><img alt="American flag" class="webfeedsFeaturedVisual wp-post-image" height="1067" src="https://thequantuminsider.com/wp-content/uploads/2026/05/la-wfuq-7cq.jpg" style="display:...

  • Researchers Demonstrate Ultra-low Noise Levels of New Qubit Platform

    <a href="https://thequantuminsider.com/2026/04/30/researchers-demonstrate-ultra-low-noise-levels-of-new-qubit-platform/" rel="nofollow" title="Researchers Demonstrate Ultra-low Noise Levels of New Qubit Platform"><img alt="qubit" class="webfeedsFeaturedVisual wp-post-image" height="300" src="https://thequantuminsider.com/wp-content/uploads/2026/04/QubitArgonne.jpg" style="di...

Chips

43 chip stack items collected on 2026-05-03; memory, packaging, compute, and foundry signals routed.

Compute Accelerators

Memory and Advanced Packaging

  • From Standards To Systems: The Chiplet Era On Arm

    <p>Igniting scalable AMBA-compliant system connectivity.</p> <p>The post <a href="https://semiengineering.com/from-standards-to-systems-the-chiplet-era-on-arm/">From Standards To Systems: The Chiplet Era On Arm</a> appeared first on <a href="https://semiengineering.com">Semiconductor Engineering</a>.</p>

Custom Silicon and Networking

  • Chip Industry Week in Review

    <p>Google's TPUs now for sale; 2/3nm capacity crunch; IC tool sales to China stopped; memory shortage widens in 2027; mega-earnings; Arm's agentic toolkit; Intel seeds universities; KAIST's liquid cooling for advanced packages; MIT-IBM tool for estimating power; V2X collaboration.</p> <p>The post <a href="https://semiengineering.com/chip-industry-week-in-review-136/">Chip In...

Foundry, Tools, and Capex

  • Transforming DRC Closure At Advanced Nodes

    <p>Turning billions of violations into actionable insights.</p> <p>The post <a href="https://semiengineering.com/transforming-drc-closure-at-advanced-nodes/">Transforming DRC Closure At Advanced Nodes</a> appeared first on <a href="https://semiengineering.com">Semiconductor Engineering</a>.</p>

  • Foundry Capacity Is Limiting Who Competes At Leading Edge Nodes

    <p>But the inability to utilize leading-edge process nodes has created opportunities for small and midsize chip developers in multi-die design, along with some sophisticated architectural design tradeoffs.</p> <p>The post <a href="https://semiengineering.com/foundries-capacity-is-limiting-who-competes-at-leading-edge-nodes/">Foundry Capacity Is Limiting Who Competes At Leadi...

Unrouted Items

Power

20 power layer items collected on 2026-05-03; data center load, grid, generation, and cooling signals routed.

Data Center Power Demand

  • Small modular reactors and microreactors under development in the United States

    Electric utilities in the United States currently operate about 98 gigawatts (GW) of nuclear generating capacity, but very little nuclear capacity has been built in the last few decades. High capital costs and lengthy licensing and approval processes have limited the expansion of nuclear power. However, several companies are developing new small modular reactor (SMR) designs...

  • U.S. coal-fired generating capacity retired in 2025 was the least in 15 years

    During 2025, the U.S. electric power sector retired 2.6 gigawatts (GW) of coal-fired generating capacity at four power plants, the least since 2010. At the beginning of 2025, coal plant operators had planned to retire 8.5 GW of capacity; however, 4.8 GW of planned retirements were delayed to a future year, and the operators of two coal plants (1.1 GW) cancelled plans to reti...

  • Rooftop solar photovoltaic systems account for 20% of Puerto Rico's capacity mix

    Rooftop solar generating capacity in Puerto Rico totaled 1,456 megawatts (MW) at the end of 2025, 20% of the overall capacity mix. Rooftop solar capacity has increased faster than other sources over the past decade. Between 2016 and 2025 rooftop solar installations accounted for 81% of the new generating capacity in Puerto Rico, according to data from our Electric Power Mont...

  • Wind and solar generated a record 17% of U.S. electricity in 2025

    Over the past 20 years, electricity from wind power and utility-scale solar power has increased to 17% of generation in the United States compared to less than 1% in 2005. In 2025, net generation of wind and solar together accounted for 760,000 gigawatthours (GWh) of electricity, 88,000 GWh more than in 2024, according to data from our Electric Power Monthly. We classify a p...

  • Fossil generation could rise with faster-than-expected growth in data center power demand

    Electricity demand has been rising steadily since 2020 after more than a decade of little change. Between 2020 and 2025, U.S. electricity demand, as measured by net energy for load, grew about 1.7% annually compared with 0.1% annual growth between 2005 and 2019. Electricity use by data centers is driving the electricity demand growth. Continued development of these large com...

Grid and Generation

Unrouted Items

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