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Realisation and measurement of on-demand entangled photon pair sources enabled by fully two-dimensional material heterostructures.

Project description

2D materials to generate entangled photons for quantum computing

Quantum computing and secure communication rely heavily on entangled photons because they can travel long distances without losing data. However, current photon sources are inefficient, difficult to scale up, and lack on-demand control. Supported by the Marie Skłodowska-Curie Actions programme, the SLED project will develop a reliable platform that directly converts electron pairs into entangled light. By combining 2D materials, such as twisted graphene and tungsten diselenide, this device will inject electron pairs to trigger on-demand photon emission at ultracold temperatures. Remarkably, users will be able to instantly switch the device between a quantum source and a standard light emitter using simple electrical gating. SLED outcomes pave the way for a flexible, dual-purpose architecture for next-generation quantum networks.

Objective

The generation of entangled photons underpins quantum communication, quantum computing, and secure information transfer, as such photons exhibit reduced susceptibility to loss and environmental decoherence, enabling reliable transmission over long distances. However, existing sources—primarily based on nonlinear crystals or quantum dots—face significant limitations, including low efficiency, limited scalability, and lack of on-demand tunability. A promising alternative involves converting electron Cooper pairs directly into photon pairs, offering potentially higher entanglement generation rates. Recent advances have demonstrated this concept using molecular beam epitaxy-grown hybrid structures, yet these approaches remain labor-intensive and cost-prohibitive. The Superconducting Light-Emitting Diode (SLED) project addresses these limitations by developing a platform for deterministic entangled photon generation. SLED combines magic-angle twisted bilayer graphene (MATBG), with a two-dimensional WSe2 semiconductor. Cooper pairs from MATBG are injected into the WSe2 channel, where the electron and hole cooper pair will recombine to emit photon pair ,with high fidelity, on-demand tunability, and energy-efficient operation at cryogenic temperatures. The ability to switch between SLED operation and conventional LED operation entirely through electrostatic gating, without requiring any structural or cryogenic modifications. This tunability enables real-time control over the quantum state of emitted photons, providing a versatile platform for both classical optoelectronics and quantum photonics within a single device.The project aims to deliver a deterministic platform for entangled photon generation, establishing a foundational pathway toward next-generation integrated quantum photonic architectures and enabling transformative advances in quantum communication and computation.

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Programme(s)

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Topic(s)

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Funding Scheme

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HORIZON-TMA-MSCA-PF-EF - HORIZON TMA MSCA Postdoctoral Fellowships - European Fellowships

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Call for proposal

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(opens in new window) HORIZON-MSCA-2025-PF

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Coordinator

AALTO KORKEAKOULUSAATIO SR
Net EU contribution

Net EU financial contribution. The sum of money that the participant receives, deducted by the EU contribution to its linked third party. It considers the distribution of the EU financial contribution between direct beneficiaries of the project and other types of participants, like third-party participants.

€ 242 116,80
Address
OTAKAARI 1
02150 Espoo
Finland

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Region
Manner-Suomi Helsinki-Uusimaa Helsinki-Uusimaa
Activity type
Higher or Secondary Education Establishments
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Total cost

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No data