Double dome structure of the Bose–Einstein condensation in diluted S = 3/2 quantum magnets

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Abstract

Bose–Einstein condensation (BEC) in quantum magnets, where bosonic spin excitations condense into ordered ground states, is a realization of BEC in a thermodynamic limit. Although previous magnetic BEC studies have focused on magnets with small spins of S ≤ 1, larger spin systems potentially possess richer physics because of the multiple excitations on a single site level. Here, we show the evolution of the magnetic phase diagram of S = 3/2 quantum magnet Ba2CoGe2O7 when the averaged interaction J is controlled by a dilution of magnetic sites. By partial substitution of Co with nonmagnetic Zn, the magnetic order dome transforms into a double dome structure, which can be explained by three kinds of magnetic BECs with distinct excitations. Furthermore, we show the importance of the randomness effects induced by the quenched disorder: we discuss the relevance of geometrical percolation and Bose/Mott glass physics near the BEC quantum critical point.

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Watanabe, Y., Miyake, A., Gen, M., Mizukami, Y., Hashimoto, K., Shibauchi, T., … Arima, T. hisa. (2023). Double dome structure of the Bose–Einstein condensation in diluted S = 3/2 quantum magnets. Nature Communications, 14(1). https://doi.org/10.1038/s41467-023-36725-4

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