TY - JOUR
T1 - Coexisting Magnetism, Ferroelectric, and Ferrovalley Multiferroic in Stacking-Dependent Two-Dimensional Materials
AU - Xun, Wei
AU - Wu, Chao
AU - Sun, Hanbo
AU - Zhang, Weixi
AU - Wu, Yin Zhong
AU - Li, Ping
N1 - Publisher Copyright:
© 2024 American Chemical Society.
PY - 2024/3/20
Y1 - 2024/3/20
N2 - Two-dimensional (2D) multiferroic materials have widespread application prospects in facilitating the integration and miniaturization of nanodevices. However, the magnetic, ferroelectric, and ferrovalley properties in one 2D material are rarely coupled. Here, we propose a mechanism for manipulating magnetism, ferroelectric, and valley polarization by interlayer sliding in a 2D bilayer material. Monolayer GdI2 is a ferromagnetic semiconductor with a valley polarization of up to 155.5 meV. More interestingly, the magnetism and valley polarization of bilayer GdI2 can be strongly coupled by sliding ferroelectricity, making these tunable and reversible. In addition, we uncover the microscopic mechanism of the magnetic phase transition by a spin Hamiltonian and electron hopping between layers. Our findings offer a new direction for investigating 2D multiferroic devices with implications for next-generation electronic, valleytronic, and spintronic devices.
AB - Two-dimensional (2D) multiferroic materials have widespread application prospects in facilitating the integration and miniaturization of nanodevices. However, the magnetic, ferroelectric, and ferrovalley properties in one 2D material are rarely coupled. Here, we propose a mechanism for manipulating magnetism, ferroelectric, and valley polarization by interlayer sliding in a 2D bilayer material. Monolayer GdI2 is a ferromagnetic semiconductor with a valley polarization of up to 155.5 meV. More interestingly, the magnetism and valley polarization of bilayer GdI2 can be strongly coupled by sliding ferroelectricity, making these tunable and reversible. In addition, we uncover the microscopic mechanism of the magnetic phase transition by a spin Hamiltonian and electron hopping between layers. Our findings offer a new direction for investigating 2D multiferroic devices with implications for next-generation electronic, valleytronic, and spintronic devices.
KW - d-orbital hopping
KW - ferrovalley
KW - magnetic phase transition
KW - sliding ferroelectricity
KW - two-dimensional multiferroic
UR - https://www.scopus.com/pages/publications/85187390940
U2 - 10.1021/acs.nanolett.4c00597
DO - 10.1021/acs.nanolett.4c00597
M3 - 文章
C2 - 38451854
AN - SCOPUS:85187390940
SN - 1530-6984
VL - 24
SP - 3541
EP - 3547
JO - Nano Letters
JF - Nano Letters
IS - 11
ER -