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Dive into the research topics where Ya-Jiao Ke is active.

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Featured researches published by Ya-Jiao Ke.


Scientific Reports | 2013

Integrating giant microwave absorption with magnetic refrigeration in one multifunctional intermetallic compound of LaFe 11.6 Si 1.4 C 0.2 H 1.7

Ningning Song; Ya-Jiao Ke; Haitao Yang; Hu Zhang; Xiang-Qun Zhang; Bao-gen Shen; Zhao-hua Cheng

Both microwave absorption and magnetocaloric effect (MCE) are two essential performances of magnetic materials. We observe that LaFe11.6Si1.4C0.2H1.7 intermetallic compound exhibits the advantages of both giant microwave absorption exceeding −42 dB and magnetic entropy change of −20 Jkg−1K−1. The excellent electromagnetic wave absorption results from the large magnetic loss and dielectric loss as well as the efficient complementarity between relative permittivity and permeability. The giant MCE effect in this material provides an ideal technique for cooling the MAMs to avoid temperature increase and infrared radiation during microwave absorption. Our finding suggests that we can integrate the giant microwave absorption with magnetic refrigeration in one multifunctional material. This integration not only advances our understanding of the correlation between microwave absorption and MCE, but also can open a new avenue to exploit microwave devices and electromagnetic stealth.


Scientific Reports | 2015

Giant rotating magnetocaloric effect induced by highly texturing in polycrystalline DyNiSi compound

Hu Zhang; YaWei Li; Enke Liu; Ya-Jiao Ke; JinLing Jin; Yi Long; Bao-gen Shen

Large rotating magnetocaloric effect (MCE) has been observed in some single crystals due to strong magnetocrystalline anisotropy. By utilizing the rotating MCE, a new type of rotary magnetic refrigerator can be constructed, which could be more simplified and efficient than the conventional one. However, compared with polycrystalline materials, the high cost and complexity of preparation for single crystals hinder the development of this novel magnetic refrigeration technology. For the first time, here we observe giant rotating MCE in textured DyNiSi polycrystalline material, which is larger than those of most rotating magnetic refrigerants reported so far. This result suggests that DyNiSi compound could be attractive candidate of magnetic refrigerants for novel rotary magnetic refrigerator. By considering the influence of demagnetization effect on MCE, the origin of large rotating MCE in textured DyNiSi is attributed to the coexistence of strong magnetocrystalline anisotropy and highly preferred orientation. Our study on textured DyNiSi not only provides a new magnetic refrigerant with large rotating MCE for low temperature magnetic refrigeration, but also opens a new way to exploit magnetic refrigeration materials with large rotating MCE, which will be highly beneficial to the development of rotating magnetic refrigeration technology.


Chinese Physics B | 2015

Low field induced giant anisotropic magnetocaloric effect in DyFeO3 single crystal

Ya-Jiao Ke; Xiang-Qun Zhang; Heng Ge; Yue Ma; Zhao-hua Cheng

We have investigated the anisotropic magnetocaloric effect and the rotating field magnetic entropy in DyFeO3 single crystal. A giant rotating field entropy change of was achieved from b axis to c axis in bc plane at 5 K for a low field change of 20 kOe. The large anisotropic magnetic entropy change is mainly accounted for the 4f electron of rare-earth Dy3 + ion. The large value of rotating field entropy change, together with large refrigeration capacity and negligible hysteresis, suggests that the multiferroic ferrite DyFeO3 singlecrystal could be a potential material for anisotropic magnetic refrigeration at low field, which can be realized in the practical application around liquid helium temperature region.


Scientific Reports | 2016

Anisotropic magnetic entropy change in RFeO3 single crystals(R = Tb, Tm, or Y)

Ya-Jiao Ke; Xiang-Qun Zhang; Yue Ma; Zhao-hua Cheng

Compared with traditional gas-compression/expansion refrigeration, magnetic refrigeration based on magnetocaloric effect (MCE) exhibits the advantages of high energy efficiency and environment friendliness. Here, we created large MCE in RFeO3 (R = Tb or Tm) single crystals by the magnetization vector rotation of single crystal with strong magnetocrystalline anisotropy (MCA), rather than merely via the order-disorder magnetic phase transition or magnetic structural transition. Owing to the difference in charge distribution of 4f-electrons between Tb3+  and Tm3+ ions, the rotating field entropy with different signs, −ΔSMR = 17.42 J/kg K, and –ΔSMR = −9.01 J/kg K are achieved at 9 K and 17 K for TbFeO3 and TmFeO3 single crystals from b axis to c axis, at 50 kOe, respectively. The finding of the large anisotropic MCE not only advances our understanding of the anisotropy of MCE, but also extends the application for single crystals to magnetic refrigeration.


Chinese Physics B | 2013

Large reversible magnetocaloric effect in HoMn2O5

Heng Ge; Xiang-Qun Zhang; Ya-Jiao Ke; Jin-Ling Jin; Zhi-Xin Liao; Zhao-hua Cheng

Magnetocaloric effect (MCE) in polycrystalline HoMn2O5 was investigated by isothermal magnetization curves from 2 K to 50 K. A relatively large magnetic entropy change, ΔSM = 7.8 J/(kg · K), was achieved with the magnetic field up to 70 kOe (1 Oe = 79.5775 A · m−1). The magnetic entropy change is reversible in the whole range of temperature. The contributions of elastic and magnetoelastic energy to the changing of the magnetic entropy are discussed in terms of the Landau theory. The reversibility of MCE with maximal refrigerant capacity RC = 216.7 J/kg makes polycrystalline HoMn2O5 promising as a magnetic refrigerant.


Advanced Materials | 2018

Ultrafast Photoinduced Multimode Antiferromagnetic Spin Dynamics in Exchange‐Coupled Fe/RFeO3 (R = Er or Dy) Heterostructures

Jin Tang; Ya-Jiao Ke; Wei He; Xiang-Qun Zhang; Wei Zhang; Na Li; Yong-Sheng Zhang; Yan Li; Zhao-hua Cheng

Antiferromagnetic spin dynamics is important for both fundamental and applied antiferromagnetic spintronic devices; however, it is rarely explored by external fields because of the strong exchange interaction in antiferromagnetic materials. Here, the photoinduced excitation of ultrafast antiferromagnetic spin dynamics is achieved by capping antiferromagnetic RFeO3 (R = Er or Dy) with an exchange-coupled ferromagnetic Fe film. Compared with antiferromagnetic spin dynamics of bare RFeO3 orthoferrite single crystals, which can be triggered effectively by ultrafast laser heating just below the phase transition temperature, the ultrafast photoinduced multimode antiferromagnetic spin dynamic modes, for exchange-coupled Fe/RFeO3 heterostructures, including quasiferromagnetic resonance, impurity, coherent phonon, and quasiantiferromagnetic modes, are observed in a temperature range of 10-300 K. These experimental results not only offer an effective means to trigger ultrafast antiferromagnetic spin dynamics of rare-earth orthoferrites, but also shed light on the ultrafast manipulation of antiferromagnetic magnetization in Fe/RFeO3 heterostructures.


AIP Advances | 2017

Large rotating magnetocaloric effect in ErAlO3 single crystal

Xinshuai Zhang; Yuchen Wu; Y.Q. Ma; Q.Y. Dong; Ya-Jiao Ke; Zhukuan Cheng

Magnetic and magnetocaloric properties of ErAlO3 single crystal were investigated. Magnetization of ErAlO3 shows obvious anisotropy when magnetic field is applied along the a, b and c axes, which leads to large anisotropic magnetic entropy change. In particular, large rotating field entropy change from the b to c axis within the bc plane is obtained and reaches 9.7 J/kg K at 14 K in a field of 5 T. This suggests the possibility of using ErAlO3 single crystal for magnetic refrigerators by rotating its magnetization vector rather than moving it in and out of the magnet.Magnetic and magnetocaloric properties of ErAlO3 single crystal were investigated. Magnetization of ErAlO3 shows obvious anisotropy when magnetic field is applied along the a, b and c axes, which leads to large anisotropic magnetic entropy change. In particular, large rotating field entropy change from the b to c axis within the bc plane is obtained and reaches 9.7 J/kg K at 14 K in a field of 5 T. This suggests the possibility of using ErAlO3 single crystal for magnetic refrigerators by rotating its magnetization vector rather than moving it in and out of the magnet.


Journal of Alloys and Compounds | 2018

Magnetocaloric effect and critical behaviors of R 2 NiMnO 6 ( R =Eu and Dy) double perovskite oxides

Lei Su; Xiang-Qun Zhang; Qiao-Yan Dong; Ya-Jiao Ke; Kai-Yue Hou; Cheng-Shi Liu; Zhao-hua Cheng


Solid State Communications | 2015

Eu doping-induced enhancement of magnetocaloric effect in manganite La1.4Ca1.6Mn2O7

Y.Q. Ma; Q.Y. Dong; Ya-Jiao Ke; Y.D. Wu; Xianping Zhang; Lulu Wang; B. G. Shen; J. R. Sun; Zhukuan Cheng


Materials Letters | 2015

Ericsson-like giant magnetocaloric effect in GdCrO4–ErCrO4 composite oxides near liquid hydrogen temperature

Q. Dong; Y.Q. Ma; Ya-Jiao Ke; Xuequan Zhang; Lulu Wang; B. G. Shen; J. R. Sun; Zhao-hua Cheng

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Zhao-hua Cheng

Chinese Academy of Sciences

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Xiang-Qun Zhang

Chinese Academy of Sciences

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Y.Q. Ma

Chinese Academy of Sciences

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Yue Ma

Capital Normal University

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B. G. Shen

Chinese Academy of Sciences

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Bao-gen Shen

Chinese Academy of Sciences

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J. R. Sun

Chinese Academy of Sciences

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Lulu Wang

Chinese Academy of Sciences

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Q.Y. Dong

Capital Normal University

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Qiao-Yan Dong

Capital Normal University

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