Oxford physicists create new Schrödinger’s cat quantum state

Researchers at the University of Oxford have generated a new family of quantum superpositions using nonclassical components in a trapped ion system. The work demonstrates programmable control over exotic motional states and could advance quantum technologies.

The team used the motion of a single trapped ion to build superpositions from highly nonclassical quantum components rather than standard coherent states. They entangled the ion's internal qubit-like state with its motional states and performed a mid-circuit measurement to collapse the motion into the desired superposition.

Lead author Dr. Sebastian Saner said the method provided a tool to sculpt the quantum superposition into almost any shape. Measurements showed interference patterns and Wigner negativity confirming genuine quantum behavior.

Dr. Raghavendra Srinivas, who supervised the work, noted strong interest from colleagues and said the group believes it is only beginning to explore the possibilities. The results appear in Physical Review X.

The states may support more resilient quantum computing and simpler error correction while offering a platform to study the boundary between classical and quantum worlds.

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Researchers at the University of Chicago have developed a straightforward method to produce complex entangled quantum states using basic adjustments in optical cavity systems. The approach relies on existing laboratory tools and could advance quantum sensing applications. Their findings appear in a recent issue of Physical Review X.

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Researchers at the University of Oxford have achieved the first-ever demonstration of quadsqueezing, a fourth-order quantum effect, using a single trapped ion. The breakthrough, published on May 1 in Nature Physics, introduces a novel method to engineer complex quantum interactions. This advance could enhance quantum simulation, sensing, and computing.

Researchers at Nanjing University have identified a new quantum state of matter in a thin carbon material that electrons neither fully two-dimensional nor three-dimensional. The discovery, termed the transdimensional anomalous Hall effect, emerged unexpectedly during experiments in magnetic fields. Lei Wang and his team confirmed the phenomenon after a year of analysis.

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French physicists James Hefford and Matt Wilson have proposed a mathematical model called QBox, outlining a post-quantum layer of reality that could bridge quantum theory and gravity. The theory introduces 'hyperdecoherence,' allowing quantum mechanics to emerge from a deeper realm with indefinite causality. Experts praise the work as a promising step toward quantum gravity.

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