Glitches in the matrix – The Source – Washington University in St. Louis

The most interesting parts of nature are often the imperfections. Thats especially true in quantum physics, the atomic-level world where tiny flaws can make a big difference in the ways particles behave and interact.

As reported in a paper inNature Communications,Chong Zu, an assistant professor of physics in Arts & Sciences at Washington University in St. Louis, and his team are finding new ways to harness the quantum power of defects in otherwise flawless crystals.

The work is supportedin part by theCenter for Quantum Leaps, a signature initiative of theArts & Sciences strategic planthat aims to apply quantum insights and technologies to physics, biomedical and life sciences, drug discovery and other far-reaching fields.

Zus lab is looking at atomic flaws in boron nitride, a material that forms sheets so thin it can be considered two-dimensional. Boron nitride is generally unchanging and uniform but, every once in a while, a missing boron atom will leave a tiny space. These gaps can happen naturally, but Zu and his team including graduate student Ruotian (Reginald) Gong sped up the process by bombarding microscopic flakes of the material with atoms of helium, little atomic bullets that randomly knock out boron atoms.

The resulting gaps have important quantum potential. The voids naturally fill with electrons that are highly sensitive to their surroundings. For example, tiny shifts in magnetic fields and temperature can change the spin and energy state of the electrons. This sensitivity makes them potentially useful as quantum sensors. In the new study, Zu, Gong and colleagues showed for the first time that the electrons also react to changes in electric fields, expanding the range of potential applications.

Because these particular sensors are trapped in a thin, stable matrix of boron nitride, they could theoretically be applied to a wide variety of substances, from geologic to biologic. Other types of sensors are typically created in a vacuum environment that must be chilled to temperatures near absolute zero.

You could never put something that cold next to a living cell, Zu said. The sensors made from boron nitride, however, are room temperature.

The boron nitride sensors could be also used in basic simulation experiments to study quantum interactions of particles, Zu said. Physicists often use computer programs to predict how particles might interact, he said, but the systems are so complex that even the highest-powered computers can only work so fast.

Instead of trying to build the systems on a computer, you can just create the exact system that you want to studyand then examine the interactions, he said.

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Glitches in the matrix - The Source - Washington University in St. Louis

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