TY - JOUR
T1 - Structural, magnetic, and magnetocaloric properties of triangular-lattice transition-metal phosphates
AU - Zhang, Chuandi
AU - Xiang, Junsen
AU - Zhu, Quanliang
AU - Wu, Longfei
AU - Zhang, Shanfeng
AU - Xu, Juping
AU - Yin, Wen
AU - Sun, Peijie
AU - Li, Wei
AU - Su, Gang
AU - Jin, Wentao
N1 - Publisher Copyright:
© 2024 American Physical Society.
PY - 2024/4
Y1 - 2024/4
N2 - The recent discovery of the spin supersolid candidate Na2BaCo(PO4)2 has stimulated a great deal of research on triangular-lattice transition-metal phosphates. Here we report a comprehensive study on the structural, magnetic, and magnetocaloric properties of polycrystalline Na2AT(PO4)2 (A = Ba,Sr; T = Co,Ni,Mn). X-ray and neutron diffraction measurements confirm that Na2BaT(PO4)2 (NBTP) crystallizes in a trigonal structure, while Na2SrT(PO4)2 (NSTP) forms a monoclinic structure with a slight distortion of the triangular network of T2+ ions. The dc magnetization data show that all six compounds order antiferromagnetically below 2 K, and the Néel temperatures of NSTP are consistently higher than those of NBTP for T = Co, Ni, and Mn, due to the release of geometrical frustration by monoclinical distortions. Furthermore, magnetocaloric measurements show that trigonal NBTP can reach a lower temperature in the quasiadiabatic demagnetization process and thus it demonstrates a better performance in the magnetic refrigeration, compared with monoclinic NSTP. Our findings highlight the outstanding magnetocaloric performances of the trigonal transition-metal phosphates and disclose two necessary ingredients for a superior magnetic coolant that can reach an ultralow temperature, including a perfect geometrically frustrated lattice and a small effective spin number associated with the magnetic ions.
AB - The recent discovery of the spin supersolid candidate Na2BaCo(PO4)2 has stimulated a great deal of research on triangular-lattice transition-metal phosphates. Here we report a comprehensive study on the structural, magnetic, and magnetocaloric properties of polycrystalline Na2AT(PO4)2 (A = Ba,Sr; T = Co,Ni,Mn). X-ray and neutron diffraction measurements confirm that Na2BaT(PO4)2 (NBTP) crystallizes in a trigonal structure, while Na2SrT(PO4)2 (NSTP) forms a monoclinic structure with a slight distortion of the triangular network of T2+ ions. The dc magnetization data show that all six compounds order antiferromagnetically below 2 K, and the Néel temperatures of NSTP are consistently higher than those of NBTP for T = Co, Ni, and Mn, due to the release of geometrical frustration by monoclinical distortions. Furthermore, magnetocaloric measurements show that trigonal NBTP can reach a lower temperature in the quasiadiabatic demagnetization process and thus it demonstrates a better performance in the magnetic refrigeration, compared with monoclinic NSTP. Our findings highlight the outstanding magnetocaloric performances of the trigonal transition-metal phosphates and disclose two necessary ingredients for a superior magnetic coolant that can reach an ultralow temperature, including a perfect geometrically frustrated lattice and a small effective spin number associated with the magnetic ions.
UR - https://www.scopus.com/pages/publications/85191514174
U2 - 10.1103/PhysRevMaterials.8.044409
DO - 10.1103/PhysRevMaterials.8.044409
M3 - 文章
AN - SCOPUS:85191514174
SN - 2475-9953
VL - 8
JO - Physical Review Materials
JF - Physical Review Materials
IS - 4
M1 - 044409
ER -