Most magnets have two poles: north and south, or positive and negative, in a familiar arrangement called a "dipole." But researchers are increasingly uncovering more complex forms of magnetism.
Recent advances in quantum mechanics have revealed higher orders of magnetism, including an "octupolar order" in which a pattern of particles arranged in a crystalline structure within a material behaves as if it has eight magnetic poles rather than the familiar two. However, detecting and controlling these elusive magnetic states is a significant challenge.
Now, a team led by quantum physicists at the University of Toronto has established a new method for observing quantum magnetic states using light to probe the atomic vibrations produced as electrons spin. The work is a critical first step toward harnessing multipolar magnetism for practical technologies, including next-generation data storage and computing devices.
"We identified new signatures of a hidden type of magnetic state which cannot be detected using ordinary probes," says Arun Paramekanti, a professor in the Department of Physics and the Center for Quantum Information & Quantum Control in the Faculty of Arts & Science at the University of Toronto, and senior author of a study published in Physical Review Letters that describes the findings.
"Our research opens up the possibility for using higher-order magnets in several applications including controllable read-write memory elements found in everyday computers."
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