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相关论文: Aziz and Howl's Gravity-Induced Entanglement Chann…

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A recent paper by Aziz and Howl (Nature 2025) argues that, once quantum matter is described at the level of quantum field theory and coupled to a classical gravitational field, higher order processes can generate entanglement between two…

量子物理 · 物理学 2025-11-27 Mikołaj Sienicki , Krzysztof Sienicki

Aziz and Howl [Nature 646 (2025)] argue that two spatially separated masses can become entangled even when gravity is treated as a classical field, by invoking higher-order "virtual-matter" processes in a QFT description of matter, which is…

量子物理 · 物理学 2025-12-19 Ziqian Tang , Chen Yang , Zizhao Han , Zikuan Kan , Yulong Liu , Hanyu Xue

A recent paper published on Nature [Nature,646,813(2025)] by Aziz and Howl, claims that quantum particles become entangled when they interact gravitationally, even if the gravitational potential is treated classically. We show that the…

量子物理 · 物理学 2026-04-22 Anirudh Gundhi , Giorgia Infantino , Angelo Bassi

In their recent work, Nature, {\bf 646}, 813 (2025), Aziz and Howl claim that classical (unquantized) gravity can generate entanglement of quantized matter if matter is treated within quantum field theory which is, no doubt, our ultimate…

量子物理 · 物理学 2026-04-28 Lajos Diósi

In Nature, 646, 813 (2025), Aziz and Howl claim that classical (unquantised) gravity produces entanglement. We show that their model does not produce entanglement. Even if the model produced entanglement, it would be mediated by the…

量子物理 · 物理学 2025-11-11 Chiara Marletto , Jonathan Oppenheim , Vlatko Vedral , Elizabeth Wilson

It is currently believed that there is no experimental evidence on possibly quantum features of gravity or gravity-motivated modifications of quantum mechanics. Here we show that single-atom interference experi- ments achieving large…

量子物理 · 物理学 2018-08-07 Natacha Altamirano , Paulina Corona-Ugalde , Robert B. Mann , Magdalena Zych

A direct quantization of the Newtonian interaction between two masses is known to establish entanglement, which if detected would witness the quantum nature of the gravitational field. Gravitational interaction is yet compatible also with…

We investigate whether Newtonian gravity can generate quantum entanglement between mesoscopic quantum bodies modeled as superposed mass quadrupoles using three complementary approaches: mini-superspace, semiclassical gravity, and stochastic…

高能物理 - 理论 · 物理学 2026-03-09 Feng-Li Lin , Sayid Mondal

In recent years, the quantum nature of gravity has attracted significant attention as one of the most important problems in modern physics. Here, we analyze the mechanism of gravitationally-induced entanglement from the perspective of…

量子物理 · 物理学 2026-02-11 Hazhir Dolatkhah , Shahriar Salimi , Soroush Haseli

We propose an experiment to test the non-classicality of the gravitational interaction. We consider two optomechanical systems that are perfectly isolated, except for a weak gravitational coupling. If a suitable resonance condition is…

量子物理 · 物理学 2026-03-11 Andrea Mari , Stefano Zippilli , David Vitali

Once again, dispute has arisen over the interpretation of proposed quantum information theory experiments to probe the quantum nature of gravity by testing for gravitationally induced entanglement (GIE) between two spatially separated…

量子物理 · 物理学 2026-03-17 Mike D. Schneider , Nick Huggett , Niels Linnemann

Prior entanglement between sender and receiver, which exactly doubles the classical capacity of a noiseless quantum channel, can increase the classical capacity of some noisy quantum channels by an arbitrarily large constant factor…

量子物理 · 物理学 2009-01-23 Charles H. Bennett , Peter W. Shor , John A. Smolin , Ashish V. Thapliyal

Observation of gravitationally induced quantum entanglement is often interpreted as a direct evidence of non-classical gravity. While the form and the degree of non-classicality have been rigorously studied from a foundational perspective,…

量子物理 · 物理学 2026-05-21 Samuel Schlegel , Ankit Kumar , Tomasz Paterek , Borivoje Dakić

Experiments witnessing the entanglement between two particles interacting only via the gravitational field have been proposed as a test whether gravity must be quantized. In the language of quantum information, a non-quantum gravitational…

量子物理 · 物理学 2022-09-12 M. Kemal Döner , André Großardt

We discuss the quantum mechanical description of a gravitational wave interacting with a cavity electromagnetic field. Quantum fluctuations of the gravitational vacuum induce squeezing in the optical field. Moreover, this squeezing…

量子物理 · 物理学 2020-06-19 Thiago Guerreiro

Due to the weakness of gravitational coupling, all quantum experiments up to date in which gravity plays a role utilized the field of the Earth. Since this field undergoes practically undetectable back-action from quantum particles, it…

量子物理 · 物理学 2024-05-16 Ankit Kumar

We consider the coupling of quantum fields to classical gravity in the formalism of ensembles on configuration space, a model that allows a consistent formulation of interacting classical and quantum systems. Explicit calculations show that…

广义相对论与量子宇宙学 · 物理学 2018-09-19 Marcel Reginatto , Michael J. W. Hall

There has been a wave of recent interest in detecting the quantum nature of gravity with table-top experiments that witness gravitationally mediated entanglement. Central to these proposals is the assumption that any mediator capable of…

量子物理 · 物理学 2025-07-18 Stefan L. Ludescher , Leon D. Loveridge , Thomas D. Galley , Markus P. Müller

We rebut a recent paper that claims that classical gravity can entangle two massive superpositions by local means. We refute the misconceptions appearing in this paper and confirm that the quantum features are necessary in the gravitational…

量子物理 · 物理学 2025-10-24 Chiara Marletto , Vlatko Vedral

We consider the problem of trying to send a single classical bit through a noisy quantum channel when two transmissions through the channel are available as a resource. Classically, two transmissions add nothing to the receiver's capability…

量子物理 · 物理学 2007-05-23 Charles H. Bennett , Christopher A. Fuchs , John A. Smolin
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