Magnetic quantum defects in a uniaxial antiferromagnetic insulator
Shangfei Wu, Laur Peedu, Zhihao Wang, Xuecong Wang, Xianghan Xu, Kai Du, Sang-Wook Cheong, Aleksei Boldin, Joosep Link, Ivo Heinmaa, Raivo Stern, Sai Mu, Urmas Nagel, Toomas Rõõm, Girsh Blumberg
Abstract
Point defects have been successfully utilized in various quantum technologies, serving as quantum qubits for quantum computation, single-photon emitters for quantum communication, and nanoscale sensors for quantum metrology. However, their further development faces key challenges, particularly in discovering and exploring suitable defect-host systems that meet the necessary criteria for quantum applications. Here, using polarization-resolved Raman spectroscopy and terahertz absorption spectroscopy, we discover three distinct chromium-vacancy-induced excitations in the uniaxial antiferromagnetic insulator, Cr2O3. These vacancy-induced excitations have an energy scale of a few tens of millielectronvolts and are twofold degenerate, and the lowest one at 64 cm-1 is sharp and sensitive to the external magnetic field along the easy-axis direction, particularly close to the spin-flop regime around 6T, where the mode softens from 64 to 27cm-1. Based on the defect supercell first-principles calculations, we interpret the mode at 64 cm-1 as a local magnetic excitation of the local moment within the chromium vacancy state. Our results establish that the magnetic defect states in Cr2O3 have potential for quantum applications.
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