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February 4, 2021Quantum290 citationsOpen Access

Blueprint for a Scalable Photonic Fault-Tolerant Quantum Computer

Key Points

  • To introduce a scalable, fault-tolerant photonic quantum computing architecture that operates at room temperature using integrated photonic circuits and bosonic qubits.
  • Designed a three-dimensional resource state framework combining bosonic qubits and continuous-variable squeezed vacuum states.
  • Utilized two-dimensional integrated photonic chips to generate and manipulate a qubit cluster state across two spatial dimensions and one temporal dimension.
  • Integrated non-deterministic bosonic qubit generation methods with continuous-variable Clifford gate implementations based on squeezed states.
  • Demonstrated a theoretical blueprint that achieves fault-tolerant quantum computation at ambient room temperature without cryogenic requirements.
  • Reduced fabrication and operational hurdles compared to existing optical platforms, establishing a modular route toward architectures with millions of qubits.

Abstract

Photonics is the platform of choice to build a modular, easy-to-network quantum computer operating at room temperature. However, no concrete architecture has been presented so far that exploits both the advantages of qubits encoded into states of light and the modern tools for their generation. Here we propose such a design for a scalable fault-tolerant photonic quantum computer informed by the latest developments in theory and technology. Central to our architecture is the generation and manipulation of three-dimensional resource states comprising both bosonic qubits and squeezed vacuum states. The proposal exploits state-of-the-art procedures for the non-deterministic generation of bosonic qubits combined with the strengths of continuous-variable quantum computation, namely the implementation of Clifford gates using easy-to-generate squeezed states. Moreover, the architecture is based on two-dimensional integrated photonic chips used to produce a qubit cluster state in one temporal and two spatial dimensions. By reducing the experimental challenges as compared to existing architectures and by enabling room-temperature quantum computation, our design opens the door to scalable fabrication and operation, which may allow photonics to leap-frog other platforms on the path to a quantum computer with millions of qubits.

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Cite This Study

A 2021 study studied this question.

synapsesocial.com/papers/6a7e139c3acb072eede4fc79https://doi.org/10.22331/q-2021-02-04-392
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