L. Y. Shang
Chinese Academy of Sciences
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Featured researches published by L. Y. Shang.
Journal of Applied Physics | 2008
Wenliang Zhou; Tie Lin; L. Y. Shang; Long Sun; K. H. Gao; Yunjun Zhou; G. Yu; Ning Tang; K. Han; B. Shen; S. L. Guo; Y. S. Gui; J. H. Chu
The weak antilocalization (WAL) effects of the two-dimensional electron gas (2DEG) in high mobility AlxGa1−xN/GaN heterostructure as well as beating patterns in the Shubnikov–de Haas (SdH) oscillatory magnetoresistance have been investigated by means of magnetotransport measurements before and after illumination. The zero-field spin splitting mainly arising from the Rashba spin-orbit coupling effect is studied using the weak antilocalization and beating patterns analysis, respectively. The Rashba spin-orbit coupling constant α deduced using the weak antilocalization analysis showed a good agreement with that estimated from the analysis of the beating patterns for the sample before and after illumination. For our sample, the electron motion in the high mobility system is in the ballistic regime, the experimental WAL curves were fitted by a simulated quantum conductance correction according to a model proposed by [Golub [Phys. Rev. B 71, 235310 (2005)].
Applied Physics Letters | 2008
Wenliang Zhou; Tie Lin; L. Y. Shang; Long Sun; K. H. Gao; Y. M. Zhou; G. Yu; Ning Tang; K. Han; B. Shen; S. L. Guo; Y. S. Gui; J. H. Chu
The weak antilocalization effects of the two-dimensional electron gas in a high mobility AlxGa1−xN∕GaN heterostructure have been investigated by means of magnetotransport measurements before and after illumination. The zero-field spin splitting mainly arising from the Rashba spin-orbit coupling effect as a function of electron concentration as well as a function of temperature is studied using the weak antilocalization analysis. The Rashba spin-orbit coupling constant α deduced using the weak antilocalization analysis shows a rapid decrease with the increase of the measured electron concentration.
Journal of Applied Physics | 2009
Y. M. Zhou; L. Y. Shang; G. Yu; K. H. Gao; Wenliang Zhou; Tie Lin; S. L. Guo; J. H. Chu; Nengli Dai; D. G. Austing
We study the magnetotransport properties of a gated In0.53Ga0.47As∕InP quantum well structure in the presence of spin splitting when only one electronic subband is occupied. We develop an analytical method to extract the quantum mobilities for the two spin subbands. Ionized impurity scattering and alloy disorder scattering are determined to be important in this system. Larger quantum mobility is found for the higher-energy spin subband. We also demonstrate that the difference between the quantum mobilities for the two spin subbands can be altered with the gate.
Journal of Applied Physics | 2010
Yunjun Zhou; G. Yu; Long Wei; K. H. Gao; Wenliang Zhou; Tie Lin; L. Y. Shang; S. L. Guo; J. H. Chu; Nengli Dai; D. G. Austing
We report on the strong spin-orbit (SO) interaction in a gated high-mobility In0.53Ga0.47As/InP quantum well two-dimensional electron gas. We establish that the SO interaction is dominated by the Rashba mechanism. The Rashba coupling parameters determined from analysis of both weak antilocalization and the beating pattern in the Shubnikov–de Haas oscillations are in reasonable agreement, and the small difference between them was explained by a magnetic-field-dependent effective g factor. The zero-field spin splitting shows nonmonotonic behavior with a maximum as the electron density is varied with the applied gate voltage. This is related to strong Rashba SO coupling in our sample.
Journal of Applied Physics | 2006
Ning Tang; B. Shen; K. Han; Z. J. Yang; Kun Xu; G. Y. Zhang; Tie Lin; Benpeng Zhu; Wei Zhou; L. Y. Shang; S. L. Guo; J. H. Chu
The oscillatory magnetoresistance of the two-dimensional electron gas (2DEG) in AlxGa1−xN∕GaN heterostructures has been studied by means of magnetotransport measurements at low temperatures and high magnetic fields. The split peaks of the Shubnikov–de Haas oscillations are observed at high magnetic fields, which are attributed to the spin splitting of the 2DEG. It is found that the spin splitting energy becomes smaller with an increase in magnetic field, indicating that the Zeeman spin splitting is not dominant at measured magnetic field range. Within this magnetic field range, the zero-field spin splitting, as well as Zeeman spin splitting, affects the split peaks in the oscillatory magnetoresistance of the 2DEG in AlxGa1−xN∕GaN heterostructures.
Japanese Journal of Applied Physics | 2009
Lei Sun; W. Y. Zhou; G. Yu; L. Y. Shang; K. H. Gao; Yuanming Zhou; Tie Lin; Lijie Cui; Yiping Zeng; Junhao Chu
Spin-orbit interactions in a two-dimensional electron gas were studied in an InAlAs/InGaAs/InAlAs quantum well. Since weak anti localization effects take place far beyond the diffusive regime, (i.e., the ratio of the characteristic magnetic field, at which the magnetoresistance correction maximum occurs, to the transport magnetic field is more than ten) the experimental data are examined by the Golub theory, which is applicable to both diffusive regime and ballistic regime. Satisfactory fitting lines to the experimental data have been achieved using the Golub theory. In the strong spin-orbit interaction two-dimensional electron gas system, the large spin splitting energy of 6.08 meV is observed mainly due to the high electron concentration in the quantum well. The temperature dependence of the phase-breaking rate is qualitatively in agreement with the theoretical predictions
Physical Review B | 2007
Ning Tang; Bo Shen; X. W. He; K. Han; Zhijian Yang; Zhixin Qin; Guoyi Zhang; Tie Lin; Bo Zhu; W. Y. Zhou; L. Y. Shang; Junhao Chu
Physical Review B | 2004
B Cai; L. Y. Shang; Ping Cui; J. Eckert
Solid State Communications | 2007
Wei Zhou; Tie Lin; L. Y. Shang; G. Yu; Zhongbing Huang; S. L. Guo; Y. S. Gui; Ning Dai; J. H. Chu; Lijie Cui; D.L. Li; Haixia Gao; Yu-Ping Zeng
Applied Physics A | 2009
Ning Tang; Bo Shen; K. Han; X. W. He; Chunming Yin; Zhijian Yang; Zhixin Qin; Guoyi Zhang; Tie Lin; W. Y. Zhou; L. Y. Shang; Junhao Chu