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Parity measurements help build better quantum light sources
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Parity measurements help build better quantum light sources

Researchers from East China Normal University and New York University Shanghai have developed a new protocol for preparing specialized quantum states crucial for advancing quantum technologies. The work demonstrates the generation of squeezed states, achieving approximately 9 decibels of quantum noise reduction after three parity measurements, with potential for even greater noise reduction as the number of measurements increases. This technique extends beyond squeezed states to also prepare cat and Gottesman-Kitaev-Preskill states, and the authors state the scheme is universal, allowing for the preparation of an arbitrary state. Bosonic modes utilized in this process provide long-lived degrees of freedom for quantum information storage and processing. Dispersive Measurements & Displacements: The PANDA Algorithm This work introduces the Parity/Number basis measurement Displacement Algorithm, or PANDA, a technique leveraging dispersive measurements and displacements to engineer a variety of bosonic quantum states. The PANDA algorithm’s core innovation lies in its ability to generate not only squeezed states, but also more complex states like cat and Gottesman-Kitaev-Preskill (GKP) states. These states are critical components in areas like quantum metrology and quantum communication, offering potential improvements in precision measurement and secure data transmission. The protocol hinges on the principle that a squeezed vacuum state resides exclusively within the even-parity subspace of the Fock basis, a characteristic exploited through a sequence of displaced parity measurements. By strategically applying these measurements along the anti-squeezed quadrature, the algorithm effectively isolates and prepares the desired quantum state. The team analyzed the performance of this scheme by quantifying the achievable squeezing and assessing the impact of realistic imperfections, demonstrating the robustness of the protocol. PANDA circumvents the limitation of requiring

Aug 23, 2026

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Researchers Achieve 0.93 Mbit/sec Key Rate Via Squeezed-State QKDquantum-computing

Researchers Achieve 0.93 Mbit/sec Key Rate Via Squeezed-State QKD

Researchers at University of Denmark alongside collaborators in Italy, Austria and Czech Republic have achieved continuous-variable quantum key distribution (CV-QKD) using both coherent and squeezed states over a deployed hybrid channel consisting of 620 metres of free-space link combined with two kilometres of optical fibre. The team transmitted secure information utilising continuous-variable quantum key distribution through both optical fibres and open air simultaneously; CV-QKD typically focuses on employing either one medium or the other. The demonstration combined 620 metres of free space with two kilometres of optical fibre, achieving up to 20 decibels of signal loss. By shifting complex adjustments into software processing, the researchers simplified how future networks could be deployed. Dnan A. E. CV-QKD is a method of sending encryption keys by modulating properties of light waves instead of relying on simple on/off signals. This demonstration successfully transmitted secure information over a hybrid channel consisting of 620 metres of open air linked with two kilometres of optical fibre, experiencing up to 20 decibels of signal loss. The team simplified future network deployment by shifting complex adjustments into software processing rather than hardware modifications. This approach is akin to focusing all attention onto hearing quiet sounds while slightly ignoring background noise, enhancing sensitivity in one area at the expense of another. Concatenated fibre and free-space quantum communication demonstrates record key rates Squeezed-state continuous-variable quantum key distribution (CV-QKD) attained an asymptotic secret-key rate of 0.93 Mbit per second; this represents an improvement over the previously recorded 0.42 Mbit/s using coherent states under identical conditions and marks successful operation across concatenated media for the first time. CV-QKD systems were largely confined to either optical fibre or free space transmission environments un

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Etri Team Proves Optimality for Quantum Communication Boundsquantum-computing

Etri Team Proves Optimality for Quantum Communication Bounds

Gaussian encoding achieves optimal performance for all single-mode Gaussian channels, overcoming a longstanding barrier in establishing lower bounds on energy-constrained communication through bosonic channels. This confirmation applies to channels with squeezed thermal noise, utilising a passive input decomposition technique that definitively establishes formulas for attenuating, amplifying, phase-conjugating, and additive-noise channels at every energy level; the vacuum covariance of I2/2 is a key measurement. The findings validate existing formulas used for calculating communication capacity in scenarios involving attenuating, amplifying or noisy channels, now mathematically confirmed across all energy levels and under broader conditions. Using Gaussian encoding delivers optimal performance when sending data through energy-limited bosonic channels commonly found in optical or microwave communication systems. This resolves a long-standing problem concerning efficient information transmission given power usage constraints, validating calculations of capacity across various channel types experiencing signal loss or added noise. Understanding ‘Holevo capacity’, which dictates this maximum transmission rate, is like knowing an internet connection’s bandwidth: it defines the upper limit of reliable data flow. The work extends to more complex scenarios with squeezed thermal noise and raises questions about whether similar optimality results will hold true using multiple entangled particles instead of single modes. Gaussian encoding optimises single quadrature coherent state transmission through lossy channels A new improvement to the fixed average Holevo function is now possible for every input, unlike previous improvements limited to scenarios where modulation could decouple the average state from individual letters in low energy branches. Establishing optimality even when modulation occurs on only one quadrature, either position or momentum, represents a breakthrough

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