Jinhu Yang
Hangzhou Normal University
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Featured researches published by Jinhu Yang.
Physical Review Letters | 2013
Hangdong Wang; Chiheng Dong; Qianhui Mao; Rajwali Khan; Xi Zhou; Chenxia Li; Bin Chen; Jinhu Yang; Qiping Su; Minghu Fang
We have made the first observation of superconductivity in TlNi2Se2 at T(C)=3.7 K, and it appears to involve heavy electrons with an effective mass m*=(14-20)m(b), as inferred from the normal-state electronic specific heat and the upper critical field, H(C2)(T). We found that the zero-field electronic specific-heat data, C(es)(T) (0.5 K≤T<3.7 K) in the superconducting state can be fitted with a two-gap BCS model, indicating that TlNi2Se2 seems to be a multiband superconductor, which is consistent with the band calculation for the isostructural KNi2S2. It is also found that the electronic specific-heat coefficient in the mixed state γN(H) exhibits a H(1/2) behavior, which is considered as a common feature of the d-wave superconductors. TlNi2Se2, as a d-electron system with heavy electron superconductivity, may be a bridge between cuprate- or iron-based and conventional heavy-fermion superconductors.
Scientific Reports | 2017
Huimin Chen; Lin Li; Qinqing Zhu; Jinhu Yang; Bin Chen; Qianhui Mao; Jianhua Du; Hangdong Wang; Minghu Fang
The so-called Dirac materials such as graphene and topological insulators are a new class of matter different from conventional metals and (doped) semiconductors. Superconductivity induced by doing or applying pressure in these systems may be unconventional, or host mysterious Majorana fermions. Here, we report a successfully observation of pressure-induced superconductivity in an antiferromagnetic Dirac material BaMnBi2 with Tc of ~4 K at 2.6 GPa. Both the higher upper critical field, μ0Hc2(0) ~ 7 Tesla, and the measured current independent of Tc precludes that superconductivity is ascribed to the Bi impurity. The similarity in ρab(B) linear behavior at high magnetic fields measured at 2 K both at ambient pressure (non-superconductivity) and 2.6 GPa (superconductivity, but at the normal state), as well as the smooth and similar change of resistivity with pressure measured at 7 K and 300 K in zero field, suggests that there may be no structure transition occurred below 2.6 GPa, and superconductivity observed here may emerge in the same phase with Dirac fermions. Our findings imply that BaMnBi2 may provide another platform for studying SC mechanism in the system with Dirac fermions.
Scientific Reports | 2016
Qianhui Mao; Jinhu Yang; Hangdong Wang; Rajwali Khan; Jianhua Du; Yuxing Zhou; Binjie Xu; Qin Chen; Minghu Fang
Magnetic refrigeration based on the magnetocaloric effect (MCE) is an environment-friendly, high-efficiency technology. It has been believed that a large MCE can be realized in the materials with a first-order magnetic transition (FOMT). Here, we found that TlFe3Te3 is a ferromagnetic metal with a first-order magnetic transition occurring at Curie temperature TC = 220 K. The maximum values of magnetic entropy change (Δ) along the crystallographic c-axis, estimated from the magnetization data, reach to 5.9 J kg−1K−1 and 7.0 J kg−1 K−1 for the magnetic field changes, ΔH = 0–1 T and 0–2 T, respectively, which is significantly larger than that of MCE materials with a second-order magnetic transition (SOMT). Besides the large ΔSM, the low-level both thermal and field hysteresis make TlFe3Te3 compound an attractive candidate for magnetic refrigeration. Our findings should inspire the exploration of high performance new MCE materials.
Scientific Reports | 2017
Tong Liu; Qi-Ping Su; Jinhu Yang; Yu Zhang; Shao-Jie Xiong; Jin-Ming Liu; Chui-Ping Yang
A qudit (d-level quantum system) has a large Hilbert space and thus can be used to achieve many quantum information and communication tasks. Here, we propose a method to transfer arbitrary d-dimensional quantum states (known or unknown) between two superconducting transmon qudits coupled to a single cavity. The state transfer can be performed by employing resonant interactions only. In addition, quantum states can be deterministically transferred without measurement. Numerical simulations show that high-fidelity transfer of quantum states between two superconducting transmon qudits (d ≤ 5) is feasible with current circuit QED technology. This proposal is quite general and can be applied to accomplish the same task with natural or artificial atoms of a ladder-type level structure coupled to a cavity or resonator.
Materials Research Express | 2016
Rajwali Khan; Jinhu Yang; Hangdong Wang; Qianhui Mao; Jianhua Du; Binjie Xu; Yuxing Zhou; Yannan Zhang; Bin Chen; Minghu Fang
The measurements on magnetization (M), resistivity (ρ) and specific heat (C) were carried out for the ferromagnetic CeTi Ni x Ge3 (0.0 x 0.45) system. It was found that the Curie temperature, T C, decreases with increasing Ni content, x, and reaches zero kelvin near a critical content x cr = 0.44. A new phase diagram is constructed based on these measurements. The non-Fermi liquid (nFL) behavior in ρ(T), and (T 0/T) relationship in C/T in the samples near x cr, demonstrate that strong spin fluctuation emerges in these samples, indicating that they are near a quantum critical point (QCP). Our results indicate that CeTi Ni x Ge3 may provide another platform to study exotic quantum phenomena near ferromagnetic QCP.
Journal of Physics: Condensed Matter | 2016
Zhao Jin; Zhengcai Xia; M. Wei; Jinhu Yang; Bin Chen; S. Huang; C. Shang; Huan Wu; Xiaoxing Zhang; Huang Jw; Z.W. Ouyang
The enhanced 2D layered structure single crystalline TlCo2Se2 has been successfully fabricated, which exhibits field-induced 3D spin-flop phase transitions. In the case of the magnetic field parallel to the c-axis (B//c), the applied magnetic field induces the evolution of the noncollinear helical magnetic coupling into a ferromagnetic (FM) state with all the magnetization of the Co ion parallel to the c-axis. A striking variation of the field-induced strain within the ab-plane is noticed in the magnetic field region of 20-30 T. In the case of the magnetic field perpendicular to the c-axis (B ⊥ c), the inter-layer helical antiferromagnetic (AFM) coupling may transform to an initial canted AFM coupling, and then part of it transforms to an intermediate metamagnetic phase with the alignment of two-up-one-down Co magnetic moments and finally to an ultimate FM coupling in higher magnetic fields. The robust noncollinear AFM magnetic coupling is completely destroyed above 30 T. In combination with the measurements of magnetization, magnetoresistance and field-induced strain, a complete magnetic phase diagram of the TlCo2Se2 single crystal has been depicted, demonstrating complex magnetic structures even though the crystal geometry itself gives no indication of the magnetic frustration.
npj Quantum Materials | 2018
Bin Chen; Xu Duan; Hangdong Wang; Jianhua Du; Yuxing Zhou; Chunqiang Xu; Yukun Zhang; Liyao Zhang; Meng Wei; Zhengcai Xia; Chao Cao; Jianhui Dai; Minghu Fang; Jinhu Yang
Solid State Communications | 2018
Jinhu Yang; Yang Guo; Hangdong Wang; Bin Chen
Journal of Physics: Condensed Matter | 2018
Qianhui Mao; Jinhu Yang; Hangdong Wang; Bin Chen; Xiaodong Geng; Mengyang Pan; Minghu Fang
Journal of Physics: Condensed Matter | 2018
Qianhui Mao; Bin Chen; Jinhu Yang; Yannan Zhang; Hangdong Wang; Minghu Fang