Frontier Signals

Daily brief

June 21, 2026.

70 quantum research items collected on 2026-06-21; hardware, control, and industry signals routed.

110 items · Quantum, Chips, Power · All briefs

Quantum

70 quantum research items collected on 2026-06-21; hardware, control, and industry signals routed.

Hardware and Error Correction

  • Topological Codes Based on Space Groups

    Topological codes form one of the most important classes of stabilizer codes. Most existing algebraic constructions and analyses of topological codes assume translation invariance. Here we show that topological codes can arise in more general settings by incorporating point group operations. The central construction is a class of Calderbank-Shor-Steane (CSS) codes called spa...

  • Approximating optimal decoding of quantum LDPC codes with narrow frontiers

    We introduce the Frontier decoder, a pruned dynamic-programming decoder for sparse quantum decoding problems. Frontier processes error variables in a chosen order, merges prefixes with the same residual syndrome and logical label, and approximates logical-coset posterior masses by retaining only a narrow scored frontier. Without pruning, the recursion is exact ordered infere...

  • General circuit mapping algorithm for neutral atom quantum computers

    Neutral atom quantum computers (NAQC) are emerging as a promising, scalable quantum computing platform because of their long qubit coherence, flexible qubit arrangement, and multiqubit gate capabilities. However, circuit execution often requires physically moving qubits, making compilation a critical optimization challenge. We propose a circuit independent mathematical frame...

  • Fidelity bounds for adiabatic gates and other quantum operations with time-dependent dissipation

    As quantum-computing platforms are susceptible to noise, the fidelity of quantum operations is limited by decoherence. Understanding this limitation is crucial for building utility-scale quantum processors. In previous works [Phys. Rev. Lett. 129, 150504 (2022); Quantum 9, 1684 (2025)], we presented analytical formulae for the average gate fidelity of multi-qubit operations...

  • Many-body chirality of topological stabilizer states

    A defining feature of chirality is the distinction between a system and its mirror image. Despite extensive experimental observations of chiral phases and theoretical advances, a quantum-information theoretic characterization of chirality based solely on the entanglement structure of many-body quantum states remains elusive. Here, we introduce the notion of many-body chirali...

  • Computing noise-canceling observables via Pauli propagation

    The pursuit of quantum advantage is driving the co-evolution of quantum processors and classical simulation methods. Despite advances in scale and quality, the accuracy of quantum simulation is ultimately limited by error rates and sampling overheads. Similarly, while classical simulation methods such as Pauli propagation have made remarkable progress, their accuracy is ulti...

  • Faking entanglement with imperceptible measurement deviations

    Quantum entanglement is a central resource underpinning emerging quantum technologies, enabling capabilities beyond those of classical systems. Accurate verification of entanglement is therefore crucial. However, experimental schemes usually rely on the assumption that quantum measurements can be realized exactly. As the complexity of a quantum system grows, this assumption...

  • Observation of alignment tensor effects in metastability-exchange collisions with highly polarized 3He ensembles

    Highly polarized 3He ensembles prepared by metastability-exchange optical pumping (MEOP) have been widely used in precision measurements and fundamental physics. Metastability-exchange (ME) collisions, serving as the basis of MEOP, are traditionally described in terms of atomic orientation, while the significant contributions of metastable alignment tensor at high polarizati...

Control and Quantum-AI Integration

  • Transfer-matrix functions for algebraically decaying interactions in variational infinite matrix product states

    Variational infinite matrix product state (iMPS) calculations usually make Hamiltonians with algebraically decaying interactions compatible with standard MPO algorithms by first replacing the target Hamiltonian with a finite-pole sum-of-exponentials surrogate, thereby introducing a Hamiltonian-representation residual. We formulate the fixed-$D$ variational energy without int...

  • Smooth time-dependent control of dipolar Bose-Einstein condensates

    We consider protocols for control of dipolar Bose-Einstein condensates where the critical role is played by the long-range anisotropic interatomic magnetic dipole-dipole interaction. The phase diagram of such a condensate has been explored theoretically and experimentally with certain values of the interatomic scattering length corresponding to superfluid and supersolid phas...

  • Entropy Estimation in Multi-Qutrit Systems via Variational and Classical Neural Networks

    We present a systematic study of von Neumann entropy estimation in multi-qutrit quantum systems using two complementary approaches: variational quantum algorithms (VQAs) and classical convolutional neural networks (CNNs), evaluated using an ideal (noise-free) quantum simulator. For systems up to three qutrits, we construct and evaluate 11 hardware-efficient SU(3)-inspired an...

  • Quantum ring all-reduce: communication and privacy advantages for distributed learning

    Machine learning models have scaled to unprecedented sizes, making training across distributed devices the de facto standard in the field. In this work, we explore how quantum communications can make distributed training both more communication-efficient and information-theoretically private, for both classical and quantum learning models. Ring all-reduce is the foundational...

  • Exploiting More Than Symmetry in Variational Quantum Machine Learning

    The success of variational quantum learning models crucially depends on choosing parametrizations that reflect the structure of the problem at hand. Symmetries provide one of the clearest such structures: whenever transformations of the input leave the desired outcome unchanged, this invariance should be built into the model rather than discovered during training. However, i...

  • Optimizing resource allocation for accuracy in noisy variational quantum algorithms

    For quantum algorithms to achieve their full potential, we need methodologies to optimize them, such as reaching a given output accuracy with minimal resource costs. Here, we develop such a methodology for a class of Noisy Intermediate-Scale Quantum (NISQ) algorithms. We leverage simulations of a Variational Quantum Eigensolver (VQE) to propose a phenomenological model of su...

  • Simulation of Non-Markovian Quantum Accelerated Dynamics via Time-Fractional Schrödinger Equation

    The Time-Fractional Schrödinger Equation (TFSE) is an effective tool for simulating the dynamics of non-Markovian quantum systems. The Quantum Speed Limit (QSL) time characterizes the minimum time required for the evolution of a non-Markovian quantum system. In this paper, Wei's TFSE is employed to simulate the non-Markovian quantum accelerated evolution process in the Reson...

  • All-valid-state HOBO encoding for constrained combinatorial optimization on NISQ devices

    Continued advancements in quantum computing have stimulated growing interest in translating quantum technologies into real-world applications. Consequently, the investigation of practically motivated NP-hard problems is of significant value. This study investigates the performance of a variational quantum eigensolver (VQE) in addressing the traveling salesperson problem (TSP...

Commercial and Industry Context

  • Applications of quantum annealing to magnetic dipole hyperfine structure constants: First results beyond energies for atoms

    We report the first results of the magnetic dipole hyperfine structure (HFS) constants of neutral $\mathrm{Li}$, Li-like $\mathrm{Be}$, neutral $\mathrm{Na}$, and Na-like $\mathrm{Mg}$ using a modified version of the Quantum Annealer Eigensolver (QAE) algorithm on D-Wave's quantum hardware. The results are benchmarked against relativistic configuration interaction with multi...

  • Effects of interaction range on the mean-field dynamics of Bose polarons

    We consider the three-dimensional Bose polaron problem in the regime of finite range interactions and competing length scales. Working in the reference frame of the impurity, we study both static and out of equilibrium properties of the system, in particular the transfer of momentum between the impurity and the host gas. We find that relaxation dynamics can occur via damped...

  • IBM Nighthawk Processor Validated in Quantum Chromodynamics and Cybersecurity Benchmarks

    <p>Independent researchers from the IBM Quantum Network have published two separate technical studies validating real-world applications on the IBM Nighthawk quantum processor framework. Orchestrated through the RPI-IBM Future of Computing Research Collaboration, the peer-reviewed papers demonstrate scalable, hardware-native executions across particle physics simulations and...

  • Duke University and IonQ Demonstrate Tripartite Entanglement of Remote Atomic Qubits

    <p>Researchers from the Duke Quantum Center and IonQ have demonstrated the distributed generation of a Greenberger–Horne–Zeilinger (GHZ) state across a three-node quantum network using individual trapped atomic ions. The experimental configuration consisted of three spatially separated hardware modules positioned approximately 2 meters apart, linked by 3-meter single-mode op...

  • Fixstars Amplify Integrates IonQ Backend to Support Trapped-Ion Algorithm Prototyping

    <p>Cloud-based optimization developer Fixstars Amplify Corporation has added IonQ’s trapped-ion quantum computing environment as a standard execution backend within its optimization platform. The integration enables enterprise users in the United States and Japan to develop, test, and execute combinatorial optimization workloads across hardware-agnostic pipelines. Under the...

  • INNOSPACE and Norma Partner to Develop Space-Based Quantum Computing Infrastructure

    <p>South Korean launch services company INNOSPACE has signed a memorandum of understanding (MOU) with quantum software developer Norma to co-engineer space-based quantum computing technologies. The strategic agreement sets up a collaborative framework across three operational areas: the execution of in-orbit technical demonstrations, joint participation in state-funded aeros...

  • Who’s News: Strategic Leadership Appointments at Nord Quantique, IQM Quantum Computers, Quantum Industry Canada, EPB, and QuSecure

    <p>Nord Quantique has announced the appointments of Tobi Day-Hamilton as Chief Communications Officer and Angela Olano as Vice President, Marketing, with both executives officially joining the company in July 2026. Day-Hamilton, a veteran of the Institute for Quantum Computing (IQC) at the University of Waterloo and co-founder of Streetwise Consulting, will lead global commu...

  • Diraq Expands U.S. Infrastructure Operations with Palo Alto, California Headquarters

    <p>Australian headquartered quantum hardware company Diraq has opened its office in Palo Alto as part of its U.S. growth strategy. The office will serve as a key hub for product development and developing ecosystem partnerships. The company indicated it is planning further expansion with an additional offices in the Los Angeles area as well as [...]</p> <p>The post <a href="...

Unrouted Items

  • Benchmark of quantum algorithms for ground state preparation in the presence of noise

    We compare the performance of representative cooling, adiabatic, and optimization algorithms for ground-state preparation in the presence of noise. Using an exactly solvable family of quadratic fermionic Hamiltonians subject to depolarizing noise, we derive the scaling of the achievable relative energy as a function of the noise rate and support these results with numerical...

  • Near-Optimal Learning of Local Lindbladians

    We study the problem of learning local Lindbladians from black-box access to the physical evolution, and the goal is to estimate all Hamiltonian and dissipative coefficients. We give an algorithm built directly from finite-time channel probes, which runs the unknown evolution for short times, estimates the corresponding Pauli transfer matrices from classical shadows, and con...

  • GPU-accelerated semidefinite programming for causal games

    The process matrix formalism describes quantum correlations in scenarios without a fixed causal order between local laboratories. Operational signatures of such correlations can be investigated through causal games. A paradigmatic example is the Guess-Your-Neighbour's-Input game, in which two parties attempt to guess each other's inputs. Correlations compatible with any defi...

  • Impossibility of superluminal signalling rules out causal loops in conical spacetimes

    In PRL 129, 110401 it was shown that it is theoretically possible to have operationally detectable causal loops without violating the principle of no superluminal signalling (NSS) in (1+1)-Minkowski spacetime. Whether or not such causal loops are also possible in $d > 1$ spatial dimensions, has remained a key open question. We resolve this question by showing that in a wide...

  • Space-time duality approach to (inhomogeneous) integrable quenches

    Characterising the universal aspects of non-equilibrium quantum many-body dynamics is one of the key goals of this century's physics research. Progress, however, is hindered by the lack of general theoretical frameworks for studying interacting quantum matter far from equilibrium. A recent breakthrough has been the realization that several key non-equilibrium quantities, suc...

  • Eigenvector Varieties

    Any linear space of square matrices has an associated eigenvector variety. Its points are eigenvectors of matrices from that linear space. We present a systematic study of eigenvector varieties, with focus on Lie algebras and Hamiltonians of quantum systems.

  • Quantum Kernels are Spectral Tensor Networks

    Quantum kernels admit Fourier representations whose frequencies are determined by the data-encoding gates of the underlying feature map. We show that entangling tensor kernels are matrix product operator factorizations of the corresponding Fourier coefficient tensors, thereby identifying quantum kernels as spectral tensor networks. By grouping gate-level frequency configurat...

  • Interaction geometry and ground-state properties of sparse quantum lattice models

    We investigate how interaction geometry shapes the low-energy phases of sparse tunable long-range quantum models. We focus on a class of graphs whose degree grows logarithmically with system size, and show how symmetry and frustration in graph connectivity can drive, suppress, and reshape ground-state phase transitions. The central examples are power-of-$p$ graphs, where eve...

  • Sparse Configuration Interaction for the Electronic Schrödinger Equation Revisited: Complete Basis Set Limit Complexity and Quantum-Encoding Impact

    In this article we revisit regularity results for eigenfunctions in the discrete spectrum of the electronic Schrödinger equation and study their consequences for approximation complexity. In particular, for the convergence to the complete basis set limit, it can be shown that the curse of dimensionality in the leading algebraic exponent can be mitigated. That is, for general...

  • Discrimination of genuinely nonlocal sets without entanglement in multipartite systems

    Genuine nonlocality arises when a set of multipartite orthogonal states is locally indistinguishable under any bipartition of the subsystems. The entanglement-assisted discrimination of such genuinely nonlocal orthogonal product sets has attracted significant attention in quantum information. Based on the criterion of local irreducibility, genuine nonlocality is classified i...

  • Attosecond Path Qubits in High-Harmonic Generation: Classical Dephasing and Trace-Out Decoherence

    High-harmonic generation (HHG) is governed by interference between electron trajectories. We propose that the dominant short and long trajectories define an experimentally addressable two-level subsystem: an attosecond path qubit (APQ). We formulate a trajectory-resolved density matrix to identify two distinct coherence-loss mechanisms: classical dephasing from ensemble aver...

  • Effective discrete-modulated continuous variable QKD under general attacks

    Continuous variable quantum key distribution via discrete modulations ensures information-theoretic security using standard telecom technologies, providing affordable and scalable quantum communications with simplified classical postprocessing. However, existing security proofs against general attacks often rely on restrictive assumptions, such as a bounded dimension for coh...

  • Phase locking nuclear spins in silicon with spin-orbit coupling

    Because they have such long coherence times, nuclear spins have extraordinary potential for use in quantum information processing devices. However, coherent nuclear spin control generally requires external phase references, such as microwave control fields. Here, we phase-lock a $^{29}$Si nuclear spin ensemble in a silicon quantum dot using only the internal electronic spin-...

  • Effective Faraday interaction between light and Helium-3 nuclear spins in a multi-pass cell

    Helium-3 nuclear spins form an exceptionally stable quantum system with extremely long coherence time, offering exciting opportunities for quantum technologies. In particular, nuclear spin-squeezed states promise enhanced precision for sensing tasks and tests of new physics. A central challenge for all these applications is the realization of a controllable light-nuclear spi...

  • Entanglement structure of the dynamical phases in the sub-Ohmic spin-boson model

    The sub-Ohmic spin-boson model exhibits three distinct dynamical regimes in its spin population dynamics, classified as coherent, incoherent, and pseudo-coherent. Whether these regimes correspond to distinct spin-bath entanglement structures remains an open question. Here we address this using tree tensor network states with projector-splitting time evolution (TTN-TDVP-PS),...

  • Arrival times of an atomic Bose-Einstein condensate

    The times of flight of an atomic Bose-Einstein condensate are theoretically investigated in the experimentally unexplored regime corresponding to detection close to the trap of the condensate. In this regime, there is no consensus on how to calculate the distribution of times of arrival onto the detector. For non-interacting particles, distinct theoretical predictions have b...

  • Proposal of quantum arrival-time measurement with a Bose-Einstein condensate

    This work shows how a Bose-Einstein condensate of ultracold atoms could be used to address a long-standing question in quantum theory: how much time does it take for a particle to reach a detector? To this end, we propose a realistic experimental setup, whose key idea is not to measure arrival times directly, but the arrival flux on the detector as a function of its position...

  • Extracting the physical content of Liouvillian eigenmodes: Semiclassical quantization

    Unlike in closed quantum systems where individual energy eigenstates are understood as physical excitations, open quantum systems have distinct right and left eigenstates of the Liouvillian that decay with time and are difficult to interpret. Here we introduce a physically motivated quasiprobability measure combining the two types of eigenstates that interprets a Liouville e...

  • Anomalous magneto-optical response at $\mathrm{RuO_2 / WSe_2}$ van der Waals interface

    Ruthenium dioxide ($\mathrm{RuO_2}$) has been proposed as an altermagnetic candidate, although its magnetic ground state remains controversial. Here, we probe weak interfacial magnetic states at the surface of (001)-oriented $\mathrm{RuO_2}$ films using the magnetic proximity effect (MPE) in a van der Waals heterostructure consisting of monolayer tungsten diselenide ($\mathr...

  • Mitigating Trotter Errors via Post-Processed Symmetry Restoration

    Quantum simulation is a powerful tool for exploring complex quantum many-body systems such as condensed matter physics and gauge theories. Trotterization, which approximates the ideal time evolution operator by decomposing it into a sequence of local gate operations, is one of the most widely used quantum simulation algorithms. However, such Trotterized implementations gener...

  • Random Projections for Multi-Copy Quantum Algorithms

    Estimating nonlinear properties of quantum states is a central task in quantum information science. Multivariate traces, $\mathrm{tr}(ρ_1 \cdots ρ_K)$, and nonlinear observables such as $\mathrm{tr}(ρ^K)$, for integer $K$, can be accessed through collective measurements on multiple state copies, but standard protocols based on swap tests require coherent operations on the fu...

  • Optimal multi-spectral squeezing via deterministic 2D-phase optimization

    Optimization routines are ubiquitous in quantum information technologies and essential to reach the resource levels required by quantum protocols. Specifically, multi-spectral squeezing for use in such protocols requires that losses be kept minimal at every stage, including coherent detection, which is performed by interfering the signal with a classical local-oscillator bea...

  • Truncated Wigner dynamics of biclique quantum spin glasses

    Quantum spin glasses are often considered testbeds for studying quantum optimization algorithms and as such have been the subject of various quantum advantage claims. Here we investigate the near adiabatic dynamics of biclique quantum spin glasses within the (discrete) truncated Wigner approximation (TWA). Benchmarks on small systems show that TWA recovers sample-to-sample f...

  • A Finite-Volume Scheme for the Continuum Extrapolation of Lattice Step-Scaling in (2+1)D Hamiltonian U(1) Gauge Theory

    We propose a finite-volume scheme to perform controlled continuum extrapolations of the lattice step-scaling function, a key ingredient for determining the running coupling in a Hamiltonian lattice gauge theory in small volumes. As a testbed, we employ a dual Hamiltonian formulation of pure U(1) gauge theory in (2+1) dimensions and an operator basis that remains efficient to...

  • The use of Peres lattices in periodically driven systems

    We demonstrate the strength of the method of Peres lattices in periodically driven quantum systems. The method, which has previously been used mostly in stationary systems, enables us to efficiently detect resonances in the driven system, to monitor the onset of chaos, and to recognize critical properties of the Floquet modes. It also allows quick comparisons of the spectra...

  • Optimal Shadow Estimation with Minimal Measurement Settings

    Shadow estimation is a powerful framework for predicting quantum properties from randomized measurements. While $3$-design protocols achieve optimal worst-case performance, the minimal number of measurement bases required for such optimality has remained open. Here we prove that $Θ(d^2)$ measurement bases are both necessary and sufficient for worst-case optimal shadow estima...

  • Bipartisan Coalition Introduces Legislation to Establish National Security Commission on Quantum Computing

    <p>U.S. Representatives Mike Lawler (R-NY-17) and Pat Ryan (D-NY-18) have introduced bipartisan legislation titled the National Security Commission on Quantum Computing Act of 2026 (H.R. 9318). The proposed bill outlines the creation of an independent, 11-member advisory panel tasked with conducting a systematic evaluation of global quantum technology advancements. Operating...

  • EPB Announces Robert Long as President of Strategic Initiatives

    <a href="https://thequantuminsider.com/2026/06/19/epb-announces-robert-long-as-president-of-strategic-initiatives/" rel="nofollow" title="EPB Announces Robert Long as President of Strategic Initiatives"><img alt="Picture of Robert Long" class="webfeedsFeaturedVisual wp-post-image" height="709" src="https://thequantuminsider.com/wp-content/uploads/2026/06/2026-06-19_18-00.png...

  • Quantum Industry Canada Announces Leadership Transition and Appointment of Sean Lee as Acting CEO

    <a href="https://thequantuminsider.com/2026/06/19/quantum-industry-canada-announces-leadership-transition-and-appointment-of-sean-lee-as-acting-ceo/" rel="nofollow" title="Quantum Industry Canada Announces Leadership Transition and Appointment of Sean Lee as Acting CEO"><img alt="QiC" class="webfeedsFeaturedVisual wp-post-image" height="716" src="https://thequantuminsider.co...

  • Top Quantum Programming Languages and Frameworks in 2026

    <a href="https://thequantuminsider.com/2026/06/19/state-of-quantum-computing-programming-languages/" rel="nofollow" title="Top Quantum Programming Languages and Frameworks in 2026"><img alt="Quantum Programming language" class="webfeedsFeaturedVisual wp-post-image" height="718" src="https://thequantuminsider.com/wp-content/uploads/2022/07/2026-06-18_20-57.png" style="display...

  • Magnet-Free Structured Light Control Could Advance Quantum Communications

    <a href="https://thequantuminsider.com/2026/06/19/magnet-free-structured-light-control-could-advance-quantum-communications/" rel="nofollow" title="Magnet-Free Structured Light Control Could Advance Quantum Communications"><img alt="explosion, big bang, colour, structure, lines, multi coloured, abstract, light, waves, imagination, background, geometric, hypnotic, bent, curve...

  • INNOSPACE Signs MOU With Norma For Space Quantum Computing Center, Joint R&D And Government Projects

    <a href="https://thequantuminsider.com/2026/06/19/innospace-signs-mou-with-norma-for-space-quantum-computing-center-joint-rd-and-government-projects/" rel="nofollow" title="INNOSPACE Signs MOU With Norma For Space Quantum Computing Center, Joint R&amp;D And Government Projects"><img alt="Norma INNOSPACE" class="webfeedsFeaturedVisual wp-post-image" height="692" src="https://...

  • Boeing Lab Tests Mark Major Step Toward Space-Based Quantum Network

    <a href="https://thequantuminsider.com/2026/06/18/boeing-lab-tests-mark-major-step-toward-space-based-quantum-network/" rel="nofollow" title="Boeing Lab Tests Mark Major Step Toward Space-Based Quantum Network"><img alt="Boeing" class="webfeedsFeaturedVisual wp-post-image" height="1440" src="https://thequantuminsider.com/wp-content/uploads/2026/06/Q4S-Payload-Testing-Announc...

Chips

43 chip stack items collected on 2026-06-21; memory, packaging, compute, and foundry signals routed.

Compute Accelerators

Memory and Advanced Packaging

  • How To Build Billions of Bumps

    <p>Hybrid bonding permits unprecedented connection density.</p> <p>The post <a href="https://semiengineering.com/how-to-build-billions-of-bumps/">How To Build Billions of Bumps</a> appeared first on <a href="https://semiengineering.com">Semiconductor Engineering</a>.</p>

Foundry, Tools, and Capex

Unrouted Items

Power

25 power layer items collected on 2026-06-21; data center load, grid, generation, and cooling signals routed.

Data Center Power Demand

  • Data center server energy use grows across the commercial building stock

    In the Annual Energy Outlook 2026 (AEO2026), our long-term outlook, we project electricity consumed by data center servers will increase across the commercial building stock, increasing more in standalone data centers than in all other data center rooms combined. By 2050, server consumption alone reaches between 446 billion kilowatthours (BkWh) and 818 billion BkWh. The high...

  • Commercial electricity sales have soared in Virginia, driven by data centers

    Commercial electricity sales in Virginia increased by nearly 30.0 million megawatthours (MWh) between 2019 and 2025, much faster growth than in any other state except Texas, a much larger state, according to our Annual Electric Power Industry Report. The growth in sales of electricity in Virginia is largely driven by a concentration of data centers, as well as electric vehic...

  • ENKA and GE Vernova mark the start of commercial operation of Türkiye’s first HA-powered plant

    Kırklareli, Türkiye -&nbsp;(May 12, 2026) ENKA and GE Vernova Inc (NYSE: GEV) today announced the start of commercial operations at the 852&nbsp;megawatts (MW) Kırklareli power plant in Kırklareli, about 20 miles from the Bulgarian border in Türkiye. The facility is the&nbsp;first HA-powered plant

Grid and Generation

Cooling and Electrical Infrastructure

  • Most planned natural gas pipeline capacity additions in 2026 and 2027 originate in Texas

    Developers plan to bring approximately 44.9 billion cubic feet per day (Bcf/d) of new pipeline capacity online in the United States in 2026 and 2027, according to our latest Natural Gas Pipeline Projects Tracker. Approximately 70% (31.6 Bcf/d) of this new capacity is already under construction. More than 66% (29.7 Bcf/d) of the capacity additions originate in Texas. Louisian...

Markets and Policy

  • Natural gas for power generation flat this summer, record high expected in 2027

    We forecast natural gas consumption by the U.S. electric power sector this summer will remain near recent highs and set a record next summer in our May Short-Term Energy Outlook (STEO). Despite a 2% increase in overall U.S. electricity demand this summer, we expect natural gas-fired electricity generation to be similar to last summer, primarily because of forecast increased...

Unrouted Items

  • U.S. natural gas storage capacity increased slightly in 2025

    Underground working natural gas storage capacity in the Lower 48 states increased slightly in 2025, according to our latest data, with growth concentrated in the South Central and Mountain regions. Underground natural gas storage provides a source of energy when demand increases, balancing U.S. energy needs. We calculate natural gas storage capacity in two ways: demonstrated...

  • GE Vernova powers Africa’s industrialisation with integrated energy solutions

    CAPE TOWN, South Africa (June 17, 2026) – In line with the Africa Energy Forum’s theme, ‘Building Africa’s industrialized Future,’ GE Vernova Inc. (NYSE: GEV) today showcased its comprehensive portfolio of technologies engineered to translate large-scale infrastructure ambitions into operational

  • GE Vernova to deliver pumped-storage technology for India’s 1.35 GW Upper Sileru hydropower plant

    VADODARA, INDIA&nbsp;(May 4, 2026) –&nbsp;GE Vernova Inc.&nbsp;(NYSE: GEV) announced today that it has secured an order from Megha Engineering &amp; Infrastructures Limited (MEIL) to deliver nine 150 MW pumped-storage units for the 1.35 GW Upper Sileru hydropower plant, located in the state of

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