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Xinyu Xue

Xinyu Xue

Visiting Scholar

Office: 276Z IPST Building
Telephone: 404-932-9180
Fax: N/A
Email: xinyu.xue@mse.gatech.edu
Mailing Address: IPST Building 276
Georgia Institute of Technology
500 10th Street N.W.
Atlanta, GA
Biosketch | Research Area | Publications | Highlights | Honors

Biosketch

  • 2011 to present, Visiting Scholar in School of Material Science and Engineering, Georgia Institute of Technology, Atlanta, US.
  • 2008 to present, Associate Professor in Department of Physics, Northeastern University, Shenyang, China.
  • 2003 to 2008, PhD in Institute of Physics, Chinese Academy of Sciences, Beijing, China.
  • 1999 to 2003, BS in Department of Physics, Nanjing University, Nanjing, China.

Research Area

  • Lithium ion battery based on one-dimensional nanomaterials
  • Gas sensors based on one-dimensional nanomaterials
  • Transistors based on one-dimensional nanomaterials

Publications

  1. X. Y. Xue*, S. Yuan, L. L. Xing, Z. H. Chen, Bin He, and Y. J. Chen, “Porous Co3O4 nanoneedle arrays growing directly on copper foils and their ultrafast charging/discharging as lithium-ion battery anodes”, Chem. Commun. 47, 4718 (2011).
  2. X. Y. Xue*,  Z. H. Chen, L. L. Xing, Shuang Yuan, and Y. J. Chen, “SnO2/α-MoO3 core-shell nanobelts and their extraordinarily high reversible capacity as lithium-ion battery anodes”, Chem. Commun. 47, 5205 (2011).
  3. X. Y. Xue*, B. He, S. Yuan, L. L. Xing, Z. H. Chen and C. H. Ma, “SnO2/WO3 core–shell nanorods and their high reversible capacity as lithium-ion battery anodes”, Nanotechnology 22, 395702 (2011).
  4. L. L. Xing, C. H. Ma, Z. H. Chen, Y. J. Chen, and X. Y. Xue*, “High gas sensing performance of one-step synthesized Pd-ZnO nanoflowers due to surface reactions and modifications”, Nanotechnology 22, 215501 (2011).
  5. L. L. Xing, S. Yuan, Z. H. Chen, Y. J. Chen, and X. Y. Xue*, “Enhanced gas sensing performance of SnO2/α-MoO3 heterostructure nanobelts”, Nanotechnology 22, 225502 (2011).
  6. L. L. Xing, C. H. Ma, Z. H. Chen, and X. Y. Xue*, “Temperature-dependent linear or nonlinear gas sensing characteristics of In2O3 mixed α-Fe2O3 nanorods with high sensitivity”, Appl. Surf. Sci. 257, 8576 (2011).
  7. L. L. Xing, C. X. Cui, C. H. Ma, and X. Y. Xue*, “Facile synthesis of α-MnO2/graphene nanocomposites and their high performance as lithium-ion battery anode”, Mater. Lett. 65, 2104 (2011).
  8. X. Y. Xue*, C. H. Ma, C. X. Cui, and  L. L. Xing, “High lithium storage performance of α-Fe2O3/graphene nanocomposites as lithium-ion battery anodes”, Solid State Sci. 13, 1526 (2011)
  9. X. Y. Xue*, Z. H. Chen, Y. J. Chen, C. H. Ma, L. L. Xing, Y. G. Wang, and T. H. Wang, “Abnormal gas sensing characteristics arising from catalyzed morphological changes of ionsorbed oxygen”, Nanotechnology 21, 065501 (2010).
  10. X. Y. Xue*,  Z. H. Chen, C. H. Ma, L. L. Xing, Y. J. Chen, Y. G. Wang, and T. H. Wang, “One-step Synthesis and Gas Sensing Characteristics of Uniformly-loaded Pt@SnO2 Nanorods”, J. Phys. Chem. C 114, 3968 (2010).
  11. X. Y. Xue*,  Z. H. Chen, L. L. Xing, C. H. Ma, Y. J. Chen, and T. H. Wang,“ Enhanced Optical and Sensing Properties of One-Step Synthesized Pt-ZnO Nanoflowers”, J. Phys. Chem. C 114, 18607 (2010).
  12. L. L. Xing, and X. Y. Xue, “Electrochemistry-assisted self-assembly of oriented zinc oxide and long-chain alkyl amine surfactant multilamellar nanostructures”, Sol. Sta. Sci. 12, 1593 (2010).
  13. X. Y. Xue*, L. L. Xing, Y. G. Wang, and T. H. Wang, “ Preparation, characterization and electrical transport properties of individual α-MnO2 and β-MnO2 nanorods ”, Sol. Sta. Sci. 11, 2106 (2009).
  14. X. Y. Xue*, T. L. Guo, Z. X. Lin and T. H. Wang, “Individual core-shell structured ZnSnO3 nanowires as photoconductors”, Mater. Lett. 62, 1356 (2008).
  15. X. Y. Xue*, L. L. Xing, Y. J. Chen, S. L. Shi, Y. G. Wang and T. H. Wang, “Synthesis and H2S sensing properties of CuO-SnO2 PN junction nanorods”, J. Phys. Chem. C 112, 12157 (2008).
  16. Y. G. Liu, S. L. Shi, X. Y. Xue, Y. G. Wang, and T. H. Wang, “Edge-truncated cubic Platinum Nanoparticles as Anode Catalysts for Direct Methanol Fuel Cells ”, Appl. Phys. Lett. 92, 203105 (2008).
  17. Y. J. Chen, C. L. Zhu, X. Y. Xue, X. L. Shi, and M. S. Cao, ” High capacity and excellent cycling stability of single-walled carbon nanotube/SnO2 core-shell structures as Li-insertion materials ”, Appl. Phys. Lett. 92, 223101 (2008).
  18. X. Y. Xue, P. Feng, Y. G. Wang and T. H. Wang, “Extremely high oxygen sensing of individual ZnSnO3 nanowires arising from grain boundary barrier modulation”, Appl. Phys. Lett. 91, 022111 (2007).
  19. Y. W. Tan, X. Y. Xue, Q. Peng, H. Zhao, T. H. Wang, and Y. D. Li, “Controllable Fabrication and Electrical Performance of Single Crystalline Cu2O Nanowires with High Aspect Ratios”, Nano Lett. 7,3723 (2007).
  20. Y. G. Liu, P. Feng, X. Y. Xue, S. L. Shi, X. Q. Fu, C. Wang, Y. G. Wang and T. H. Wang, “Room-temperature oxygen sensitivity of ZnS nanobelts”, Appl. Phys. Lett. 90, 042109 (2007).
  21. C. Wang, X. Q. Fu, X. Y. Xue, Y. G. Wang and T. H. Wang, “Surface accumulation conduction controlled sensing characteristics of p-type CuO nanorods induced by oxygen adsorption”, Nanotechnology 18, 145506 (2007).
  22. S. L. Shi, X. Y. Xue, P. Feng, Y. G. Liu, H. Zhao, and T. H. Wang, “Low-temperature synthesis and electrical transport properties of W18O49 nanowires”, J. Cryst. Growth 310, 462 (2007).
  23. X. Y. Xue, Y. J. Chen, Q. H. Li, C. Wang, Y. G. Wang and T. H. Wang, “Electronic transport characteristics through individual ZnSnO3 nanowires”, Appl. Phys. Lett. 88, 182102 (2006).
  24. X. Y. Xue, Y. J. Chen, Y. G. Liu, S. L. Shi, Y. G. Wang and T. H. Wang, “Synthesis and ethanol sensing properties of indium-doped tin oxide nanowires”, Appl. Phys. Lett. 88, 201907 (2006).
  25. X. Y. Xue, P. Feng, C. Wang, Y. J. Chen, Y. G. Wang and T. H. Wang, “Electrical transport through individual nanowires with transverse grain boundaries”, Appl. Phys. Lett. 89, 022115 (2006).
  26. X. Y. Xue, L. M. Li, H. C. Yu, Y. J. Chen, Y. G. Wang and T. H. Wang, “Extremely stable field emission from AlZnO nanowire arrays”, Appl. Phys. Lett. 89, 043118 (2006).
  27. P. Feng, X. Y. Xue, Y. G. Liu, Q. Wan and T. H. Wang, “Achieving fast oxygen response in individual β-Ga2O3 nanowires by ultraviolet illumination”, Appl. Phys. Lett. 89, 112114 (2006).
  28. P. Feng, X. Y. Xue, Y. G. Liu and T. H. Wang, “Highly sensitive ethanol sensors based on {001}-bounded In2O3 nanocrystals due to fact contact”, Appl. Phys. Lett. 89, 243514 (2006).
  29. Y. J. Chen, L. Nie, X. Y. Xue, Y. G. Wang and T. H. Wang, “Linear ethanol sensing of SnO2 nanorods with extremely high sensitivity”, Appl. Phys. Lett. 88, 083105 (2006).
  30. X. Y. Xue, Y. J. Chen, Y. G. Wang and T. H. Wang, “Synthesis and ethanol sensing properties of ZnSnO3 nanowires”, Appl. Phys. Lett. 86, 233101 (2005).
  31. Y. J. Chen, X. Y. Xue, Y. G. Wang and T. H. Wang, “Synthesis and ethanol sensing characteristics of single crystalline SnO2 nanorods”, Appl. Phys. Lett. 87, 233503 (2005).
  32. Y. J. Chen, X. Y. Xue and T. H. Wang, “Large-scale controlled synthesis of silica nanotubes using zinc oxide nanowires as templates”, Nanotechnology 16, 1978 (2005).

Research Highlights

Honors & Awards