TY - JOUR
T1 - Photo-controlled exchange bias in CoO@Co-Fe PBA core-shell heterostructures
AU - Yao, Kangkang
AU - Li, Jianing
AU - Yuan, Shuang
AU - Cao, Kaiyan
AU - Wang, Fang
AU - Zhang, Yin
AU - Tian, Fanghua
AU - Wang, Jinwen
AU - Wang, Qiang
AU - Yang, Sen
N1 - Publisher Copyright:
© The Royal Society of Chemistry 2021.
PY - 2022/1/7
Y1 - 2022/1/7
N2 - Regulating the exchange bias (EB) effectviaan external field allows one to effectively tailor the properties of spin-valve-based spintronic devices. However, as a reliable way to manipulate the magnetic properties of materials, there have been few reports on the effect of light irradiation on the EB effect so far. In this work, a non-volatile light-tunable EB effect is achieved in a well-designed CoO and CoFe Prussian blue analogue core-shell structure (CoO@Co-Fe PBA), where the antiferromagnetic CoO has a large anisotropy, and the molecular magnet Co-Fe PBA is photosensitive. The EB field of this hybrid can be reduced by ∼50% after irradiation for 20 minutes, and the photo-induced change can be further increased by extending the irradiation time. In addition, the switching of the two EB effect states can be successfully implemented by switching red and blue light irradiation. Herein, this interesting photo-controlled EB effect is attributed to the change in the magnetization of the photosensitive Co-Fe PBA shell after light radiation, and the change is achieved by manipulating the number of FeIII-CoIImagnetic pairs in the shell by incident light. Apparently, this striking light-controlled EB effect opens up new prospects for the design of new-generation optoelectronic devices.
AB - Regulating the exchange bias (EB) effectviaan external field allows one to effectively tailor the properties of spin-valve-based spintronic devices. However, as a reliable way to manipulate the magnetic properties of materials, there have been few reports on the effect of light irradiation on the EB effect so far. In this work, a non-volatile light-tunable EB effect is achieved in a well-designed CoO and CoFe Prussian blue analogue core-shell structure (CoO@Co-Fe PBA), where the antiferromagnetic CoO has a large anisotropy, and the molecular magnet Co-Fe PBA is photosensitive. The EB field of this hybrid can be reduced by ∼50% after irradiation for 20 minutes, and the photo-induced change can be further increased by extending the irradiation time. In addition, the switching of the two EB effect states can be successfully implemented by switching red and blue light irradiation. Herein, this interesting photo-controlled EB effect is attributed to the change in the magnetization of the photosensitive Co-Fe PBA shell after light radiation, and the change is achieved by manipulating the number of FeIII-CoIImagnetic pairs in the shell by incident light. Apparently, this striking light-controlled EB effect opens up new prospects for the design of new-generation optoelectronic devices.
UR - https://www.scopus.com/pages/publications/85121914380
U2 - 10.1039/d1tc04562h
DO - 10.1039/d1tc04562h
M3 - 文章
AN - SCOPUS:85121914380
SN - 2050-7534
VL - 10
SP - 244
EP - 250
JO - Journal of Materials Chemistry C
JF - Journal of Materials Chemistry C
IS - 1
ER -