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Электронный каталог: Dang, N. T. - Emergent Metamagnetism and Field-Induced Phase Separation in the Frustrated Antiferromagnet BaErF...
Dang, N. T. - Emergent Metamagnetism and Field-Induced Phase Separation in the Frustrated Antiferromagnet BaErF...

Статья
Автор: Dang, N. T.
Physical Review B: Emergent Metamagnetism and Field-Induced Phase Separation in the Frustrated Antiferromagnet BaErF...
б.г.
ISBN отсутствует
Автор: Dang, N. T.
Physical Review B: Emergent Metamagnetism and Field-Induced Phase Separation in the Frustrated Antiferromagnet BaErF...
б.г.
ISBN отсутствует
Статья
Dang, N.T.
Emergent Metamagnetism and Field-Induced Phase Separation in the Frustrated Antiferromagnet BaErFeO&sub(4) / N.T.Dang, D.P.Kozlenko, S.E.Kichanov, E.V.Lukin, A.V.Rutkauskas, [a.o.]. – Text : electronic // Physical Review B. – 2026. – Vol. 114, No. 3. – P. 034401. – URL: https://doi.org/10.1103/8wp3-3187. – Bibliogr.: 63.
A clear understanding of the physics of complex magnetic oxides is crucial for unlocking new pathways to design novel materials for technological applications. We present here a detailed investigation of the temperature- and magnetic-field-driven magnetic evolution of BaErFeO&sub(4) using a suite of complementary techniques, including neutron diffraction, Mössbauer spectroscopy, dc magnetization, and transverse susceptibility measurements. Below 𝑇&sub(N1)≈50K, the Fe sublattice orders into an incommensurate collinear spin-density-wave state with propagation vector 𝑘&sub(1)=(0,0,∼0.4). The 3𝑑−4𝑓 exchange coupling drives a transition at 𝑇&sub(N2)≈32K to a commensurate noncollinear antiferromagnetic phase characterized by 𝑘&sub(2)=(0.5,0,0.5) involving ordering of both Fe&sup(3+) and Er&sup(3+) ions, followed by a further modification of the Er magnetic configuration below 𝑇&sub(N)3≈5K governed by dominant 4𝑓−4𝑓 interactions. Strong geometrical frustration prevents complete long-range magnetic ordering, leaving a substantial fraction of spins in a short-range correlated state that serves as a metastable template for phase separation. Under an applied magnetic field of 𝜇&sub(0)𝐻≈0.2T, the Er&sup(3+) spins within these regions undergo a metamagnetic spin-flip transition, nucleating ferromagnetic clusters. This metamagnetic response remains fully reversible down to 8 K, while a crossover to an irreversible ferromagneticlike regime occurs at lower temperatures, attributed to kinetic arrest of the magnetic clusters. A complex field-induced phase separation is established, in which ferromagnetic clusters of distinct populations coexist with the long-range antiferromagnetic order of the Er sublattice. These findings underscore the complex interplay among magnetic anisotropy, magnetic frustration, and quenched disorder in stabilizing the magnetic ground state of BaErFeO&sub(4).
ОИЯИ = ОИЯИ (JINR)2026
Спец.(статьи,препринты) = С 325.4 - Нелинейные системы. Хаос и синергетика. Фракталы$
Спец.(статьи,препринты) = С 36 - Физика твердого тела$
Спец.(статьи,препринты) = С 342 г1 - Замедление и диффузия нейтронов. Дифракция
Спец.(статьи,препринты) = С 350 - Приложения методов ядерной физики в смежных областях
Dang, N.T.
Emergent Metamagnetism and Field-Induced Phase Separation in the Frustrated Antiferromagnet BaErFeO&sub(4) / N.T.Dang, D.P.Kozlenko, S.E.Kichanov, E.V.Lukin, A.V.Rutkauskas, [a.o.]. – Text : electronic // Physical Review B. – 2026. – Vol. 114, No. 3. – P. 034401. – URL: https://doi.org/10.1103/8wp3-3187. – Bibliogr.: 63.
A clear understanding of the physics of complex magnetic oxides is crucial for unlocking new pathways to design novel materials for technological applications. We present here a detailed investigation of the temperature- and magnetic-field-driven magnetic evolution of BaErFeO&sub(4) using a suite of complementary techniques, including neutron diffraction, Mössbauer spectroscopy, dc magnetization, and transverse susceptibility measurements. Below 𝑇&sub(N1)≈50K, the Fe sublattice orders into an incommensurate collinear spin-density-wave state with propagation vector 𝑘&sub(1)=(0,0,∼0.4). The 3𝑑−4𝑓 exchange coupling drives a transition at 𝑇&sub(N2)≈32K to a commensurate noncollinear antiferromagnetic phase characterized by 𝑘&sub(2)=(0.5,0,0.5) involving ordering of both Fe&sup(3+) and Er&sup(3+) ions, followed by a further modification of the Er magnetic configuration below 𝑇&sub(N)3≈5K governed by dominant 4𝑓−4𝑓 interactions. Strong geometrical frustration prevents complete long-range magnetic ordering, leaving a substantial fraction of spins in a short-range correlated state that serves as a metastable template for phase separation. Under an applied magnetic field of 𝜇&sub(0)𝐻≈0.2T, the Er&sup(3+) spins within these regions undergo a metamagnetic spin-flip transition, nucleating ferromagnetic clusters. This metamagnetic response remains fully reversible down to 8 K, while a crossover to an irreversible ferromagneticlike regime occurs at lower temperatures, attributed to kinetic arrest of the magnetic clusters. A complex field-induced phase separation is established, in which ferromagnetic clusters of distinct populations coexist with the long-range antiferromagnetic order of the Er sublattice. These findings underscore the complex interplay among magnetic anisotropy, magnetic frustration, and quenched disorder in stabilizing the magnetic ground state of BaErFeO&sub(4).
ОИЯИ = ОИЯИ (JINR)2026
Спец.(статьи,препринты) = С 325.4 - Нелинейные системы. Хаос и синергетика. Фракталы$
Спец.(статьи,препринты) = С 36 - Физика твердого тела$
Спец.(статьи,препринты) = С 342 г1 - Замедление и диффузия нейтронов. Дифракция
Спец.(статьи,препринты) = С 350 - Приложения методов ядерной физики в смежных областях
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