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Atom Computing

Atom Computing develops gate-based quantum computers using arrays of optically-trapped neutral atoms, enabling the construction of scalable systems with over 1,000 error-corrected qubits. This technology addresses the need for high-performance quantum computing solutions that can support complex applications requiring long coherence times and optimized connectivity.

Berkeley, United StatesFounded 20187110K+ followers
Updated 20 months ago

Funding

$90M raised to dateRaised to date based on public sources. This may differ from the amount the company actually raised and is based only on what is publicly available on the internet.

+3
Funding rounds are not available yet.

Founders

Product

Problem

Current quantum computing solutions face scalability challenges due to limitations in qubit coherence, connectivity, and error correction, hindering their ability to solve complex, commercially valuable problems. Many applications require gate-based quantum computers with a large number of error-corrected qubits, long coherence times, and optimized connectivity.

Solution

Atom Computing develops gate-based quantum computers leveraging arrays of optically-trapped neutral atoms to achieve the scalability required for practical quantum computation. Their approach aims to overcome the limitations of existing quantum computing architectures by enabling the construction of systems with a high number of qubits, exceeding 1,000 in their next-generation system. This technology is designed to meet the critical requirements of applications demanding long coherence times, optimized connectivity, and fast operations, paving the way for breakthroughs in various industries.

Target Audience

The primary target audience includes organizations and researchers seeking high-performance quantum computing solutions for complex applications across various industries.

Features

  • Arrays of optically-trapped neutral atoms for qubit implementation
  • Gate-based quantum computing architecture
  • Scalable systems designed to exceed 1,000 qubits
  • High-fidelity gates
  • Entangled logical qubit states
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