TY - JOUR
T1 - Generation of Tunable Terahertz Waves from Tailored Versatile Spintronic Meta-Antenna Arrays
AU - Sun, Tong
AU - Bai, Zhongyang
AU - Li, Zhaoying
AU - Liu, Yongshan
AU - Chen, Yaxuan
AU - Xiong, Fan
AU - Chen, Linliang
AU - Xu, Yong
AU - Zhang, Fan
AU - Li, Dong
AU - Li, Junze
AU - Zhao, Weisheng
AU - Nie, Tianxiao
AU - Wen, Lianggong
N1 - Publisher Copyright:
© 2023 American Chemical Society.
PY - 2023/5/17
Y1 - 2023/5/17
N2 - Broadband spintronic terahertz (THz) radiation can be efficiently generated by spin-to-charge current conversion in a ferromagnetic/nonmagnetic heterostructure. There had been many studies on realizing the enhancement or the modulation of spintronic terahertz waves. However, reported devices so far focus on implementing certain specific modulation methods, either related to the spintronic stacks or related to the metamaterial structures. In this study, a set of femtosecond laser-driven versatile spintronic terahertz devices are proposed by integrating meta-antenna structures with W/CoFeB/Pt nanolayer stacks. These monolithic integrated devices exhibit spintronic terahertz wave emission, spectral modulation, and polarization manipulation simultaneously. The terahertz pulses are generated within the ferromagnetic heterostructure interfaces and transmitted along the metallic structures, leading to the modulation of the spintronic terahertz waves. Results have shown that the center-frequency shift is up to 140 GHz and the value of ellipticity can reach 0.6, demonstrating a set of integrated and efficient spintronic terahertz devices to modulate the emitted wave. In addition, compared with the slotline antenna, the maximum peak value of the bandpass band is enhanced up to 1.63 times by carefully designing the metamaterial structure. The spintronic meta-antenna array proposed here paves an integrated way for the manipulation of spintronic terahertz optoelectronic devices.
AB - Broadband spintronic terahertz (THz) radiation can be efficiently generated by spin-to-charge current conversion in a ferromagnetic/nonmagnetic heterostructure. There had been many studies on realizing the enhancement or the modulation of spintronic terahertz waves. However, reported devices so far focus on implementing certain specific modulation methods, either related to the spintronic stacks or related to the metamaterial structures. In this study, a set of femtosecond laser-driven versatile spintronic terahertz devices are proposed by integrating meta-antenna structures with W/CoFeB/Pt nanolayer stacks. These monolithic integrated devices exhibit spintronic terahertz wave emission, spectral modulation, and polarization manipulation simultaneously. The terahertz pulses are generated within the ferromagnetic heterostructure interfaces and transmitted along the metallic structures, leading to the modulation of the spintronic terahertz waves. Results have shown that the center-frequency shift is up to 140 GHz and the value of ellipticity can reach 0.6, demonstrating a set of integrated and efficient spintronic terahertz devices to modulate the emitted wave. In addition, compared with the slotline antenna, the maximum peak value of the bandpass band is enhanced up to 1.63 times by carefully designing the metamaterial structure. The spintronic meta-antenna array proposed here paves an integrated way for the manipulation of spintronic terahertz optoelectronic devices.
KW - active meta-antenna
KW - polarization state modulation
KW - spintronic terahertz
KW - terahertz emission
UR - https://www.scopus.com/pages/publications/85159605132
U2 - 10.1021/acsami.3c00315
DO - 10.1021/acsami.3c00315
M3 - 文章
C2 - 37130032
AN - SCOPUS:85159605132
SN - 1944-8244
VL - 15
SP - 23888
EP - 23898
JO - ACS Applied Materials and Interfaces
JF - ACS Applied Materials and Interfaces
IS - 19
ER -