Quantum X Labs 为结构化光束原子冷却系统申请 USPTO 专利
Quantum X Labs Seeks Patent for Structured-Beam Atom Cooling System
Quantum X Labs(NASDAQ: QXL)子公司向 USPTO 提交题为“Structured-Beam Zeeman Slower and Atomic Push-Beam System”的专利申请,用于其中性原子量子计算项目。该技术采用非高斯空间强度分布的光束,对激光减速、推进、引导和输运原子过程施加额外控制。
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Insider Brief
- Quantum X Labs has filed a USPTO patent application for a structured-beam Zeeman slower and atomic push-beam system for its cold-atom quantum computing program.
- The proposed technology uses non-Gaussian optical beam profiles to control how laser forces slow, guide, push, and transport neutral atoms.
- The application targets the physical preparation and control systems needed to cool, position, and manipulate atoms before quantum operations.
PRESS RELEASE — Quantum X Labs Inc. (NASDAQ: QXL) (“Quantum X Labs” or the “Company”) today announced that its subsidiary, Quantum X Labs Ltd., a developer of technologies across quantum computing, quantum sensing, quantum software and quantum security, has filed a patent application with the United States Patent and Trademark Office (USPTO) titled “Structured-Beam Zeeman Slower and Atomic Push-Beam System”.
The patent application relates to technologies for the laser cooling, manipulation and transport of neutral atoms, with particular focus on a Zeeman slowing apparatus in which at least one optical beam used for slowing, pushing, guiding or otherwise manipulating an atomic beam has a non-Gaussian spatial intensity distribution.
The technology covered by the patent application is being developed as part of Quantum X Labs’ cold-atom quantum computing program, where the preparation, cooling, transport and precise control of atoms represent fundamental elements of the physical architecture required to prepare atoms for subsequent trapping and quantum operations.
Zeeman slowing is an established technique for reducing the velocity of atoms using laser light together with a spatially varying magnetic field. The process enables atoms initially traveling at relatively high velocities to be decelerated to velocities suitable for subsequent cooling, trapping and manipulation.
Quantum X Labs’ patent application seeks protection for an approach that introduces structured optical beams into the atom-slowing and manipulation process, rather than relying exclusively on conventional Gaussian beam profiles. By engineering the spatial distribution of optical intensity, the proposed architecture is intended to provide additional control over how optical forces interact with an atomic beam during slowing, pushing, guiding and transport.
The patent application also addresses the use of structured optical fields in atomic push-beam systems, where optical radiation pressure is used to direct or transport cooled atoms between different regions of the quantum computing system.
The patent submission forms part of Quantum X Labs’ broader efforts to develop proprietary technologies around the physical infrastructure required to generate, cool, control, transport and manipulate atoms for cold-atom quantum computing.
Cold-atom quantum computers rely on atoms that are cooled to extremely low temperatures and precisely controlled so they can ultimately serve as quantum information carriers. Before those atoms can participate in quantum operations, they must pass through a series of preparation and control stages. The technologies addressed by the patent application are focused on this foundational layer of the Company’s cold-atom quantum computing architecture.
Prof. Nir Sharon, Chief Technology Scientist] of Quantum X Labs, commented: “A cold-atom quantum computer begins with the ability to control atoms with exceptional precision. Before atoms can be trapped and used for quantum operations, they need to be slowed, cooled, transported and positioned. This patent application reflects our strategy of developing proprietary technology not only at the quantum-processing level, but also across the underlying physical infrastructure required to build and operate cold-atom quantum computing systems.”
来源:The Quantum Insider · thequantuminsider.com