H2020Individual fellowship2021–2024

IMMQUIRE · INTEGRATED MECHANICS FOR MODULAR QUANTUM RECONFIGURABLE CIRCUITS

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2021-04-12 → 2024-04-11
EU contribution
€246,669
Participants
3
Scheme
MSCA-IF

Lines connect the coordinator with its partners.

Results in brief

INTEGRATED MECHANICS FOR MODULAR QUANTUM RECONFIGURABLE CIRCUITS

The aim of IMMQUIRE is to overcome the scaling limitations of quantum technologies by developing a modular on-chip platform equipped with mechanical reconfiguration to optically interconnect and control spin qubits. This system has the potential to generate qubit entanglement on an unprecedented scale and accelerate the development of quantum computers, cryptography, and a quantum internet. Specific objectives are a) developing a mechanically reconfigurable PIC platform designed to b) strain-tune transferred diamond spin defects into spectral alignment, and c) reconfigure PICs for spin interaction and quantum logic. At the conclusion of the project, we have shown large-scale integrated photonics and electronics for spin-optic based quantum information processing. This includes the demonstration of scalable waveguide- and cavity-coupled silicon color centers/spin defects, the integration of superconducting single-photon detectors, and diamond color center quantum systems on chip with more than 1000 qubits. These bring forward to generating large entangled states on chip for quantum computation and communication.

Data: CORDIS, © European Union

Project objective

Quantum technologies hold enormous potential to address unsolved problems in communications, computation, and sensing. The central challenge to all proposed platforms is to distribute entanglement between a large number of qubits. A promising platform is based on spin qubits interfaced via photonic integrated circuits (PICs), but nanofabrication variations hamper its scalability.My objective in this project is to overcome these limitations by developing a modular on-chip platform equipped with mechanical reconfiguration to compensate for fabrication variations of spin qubits and PICs. I propose to rely on high-quality diamond spin qubits, aluminum nitride (AlN) PICs, and microelectromechanical systems (MEMS), as the enabling technologies. I will develop a nanofabrication process integrating diamond spin defects and AlN MEMS PICs. On-chip MEMS will be used to reconfigure large-scale AlN PICs and to strain and spectrally align transferred diamond defects. After addition of a superconducting film, superconducting nanowire single-photon detectors (SNSPDs) will be added to the platform for efficient qubit readout. After optimization of a suitable modular architecture, I will demonstrate fully-integrated one-, two-, and three-module systems, enabling the experimental demonstration of a controlled-NOT quantum gate (a universal quantum logic gate), and a 3-qubit Greenberger-Horne-Zeilinger state (an initial resource for quantum computation). I will leverage collaboration with leading experts in my two host groups at MIT and WWU, as well as my own strong background in MEMS PICs to realize this interdisciplinary project.The unprecedented scalability enabled by IMMQUIRE will allow for experiments that bring us closer to the promises of quantum technologies, such as secure communications and non-forgeable currency, preparation of quantum states for ultra-precise sensing, optimization over big data, and molecular simulations for new material and drug development.

Original text from CORDIS.

Participants

  • TECHNISCHE UNIVERSITEIT DELFT · DelftCoordinatorNetherlands
  • MASSACHUSETTS INSTITUTE OF TECHNOLOGY · CambridgeUnited States
  • UNIVERSITAET MUENSTER · MuensterGermany

Links

Data: CORDIS, © European Union