Crossref journal-article
Springer Science and Business Media LLC
Nature Communications (297)
Bibliography

Sun, Y., Sun, Z., Gao, S., Cheng, H., Liu, Q., Piao, J., Yao, T., Wu, C., Hu, S., Wei, S., & Xie, Y. (2012). Fabrication of flexible and freestanding zinc chalcogenide single layers. Nature Communications, 3(1).

Authors 11
  1. Yongfu Sun (first)
  2. Zhihu Sun (additional)
  3. Shan Gao (additional)
  4. Hao Cheng (additional)
  5. Qinghua Liu (additional)
  6. Junyu Piao (additional)
  7. Tao Yao (additional)
  8. Changzheng Wu (additional)
  9. Shuanglin Hu (additional)
  10. Shiqiang Wei (additional)
  11. Yi Xie (additional)
References 30 Referenced 496
  1. Service, R. F. Carbon sheets an atom thick give rise to graphene dreams. Science 324, 875–877 (2009). (10.1126/science.324_875) / Science by RF Service (2009)
  2. Radisavljevic, B., Radenovic, A., Brivio, J., Giacometti, V. & Kis, A. Single-layer MoS2 transistors. Nat. Nanotech. 6, 147–150 (2011). (10.1038/nnano.2010.279) / Nat. Nanotech. by B Radisavljevic (2011)
  3. Zhu, Y. W. et al. Carbon-based supercapacitors produced by activation of graphene. Science 332, 1537–1541 (2011). (10.1126/science.1200770) / Science by YW Zhu (2011)
  4. Feng, J. et al. Metallic few-layered VS2 ultrathin nanosheets: high two-dimensional conductivity for in-plane supercapacitors. J. Am. Chem. Soc. 133, 17832–17838 (2011). (10.1021/ja207176c) / J. Am. Chem. Soc. by J Feng (2011)
  5. Zhi, C. Y., Bando, Y., Tang, C. C., Kuwahara, H. & Golberg, D. Large-scale fabrication of boron nitride nanosheets and their utilization in polymeric composites with improved thermal and mechanical properties. Adv. Mater. 21, 2889–2893 (2009). (10.1002/adma.200900323) / Adv. Mater. by CY Zhi (2009)
  6. Wang, G. et al. Topological insulator thin films of Bi2Te3 with controlled electronic structure. Adv. Mater. 23, 2929–2932 (2011). (10.1002/adma.201100678) / Adv. Mater. by G Wang (2011)
  7. Novoselov, K. S. et al. Electric field effect in atomically thin carbon films. Science 306, 666–669 (2004). (10.1126/science.1102896) / Science by KS Novoselov (2004)
  8. Coleman, J. N. et al. Two-dimensional nanosheets produced by liquid exfoliation of layered materials. Science 331, 568–571 (2011). (10.1126/science.1194975) / Science by JN Coleman (2011)
  9. Zhang, Y., Tan, Y. W., Stormer, H. L. & Kim, P. Experimental observation of the quantum Hall effect and Berry's phase in graphene. Nature 438, 201–204 (2005). (10.1038/nature04235) / Nature by Y Zhang (2005)
  10. Kim, J. H. et al. Large-scale soft colloidal template synthesis of 1.4 nm thick CdSe nanosheets. Angew. Chem. Int. Ed. 48, 6861–6864 (2009). (10.1002/anie.200902791) / Angew. Chem. Int. Ed. by JH Kim (2009)
  11. Ithurria, S. et al. Colloidal nanoplatelets with two-dimensional electronic structure. Nat. Mater. 10, 936–941 (2011). (10.1038/nmat3145) / Nat. Mater. by S Ithurria (2011)
  12. Hernandez, Y. et al. High-yield production of graphene by liquid-phase exfoliation of graphite. Nat. Nanotech. 3, 563–568 (2008). (10.1038/nnano.2008.215) / Nat. Nanotech. by Y Hernandez (2008)
  13. Omomo, Y. et al. Redoxable nanosheet crystallites of MnO2 derived via delamination of a layered manganese oxide. J. Am. Chem. Soc. 125, 3568–3575 (2003). (10.1021/ja021364p) / J. Am. Chem. Soc. by Y Omomo (2003)
  14. Huang, X. Y. & Li, J. From single to multiple atomic layers: a unique approach to the systematic tuning of structures and properties of inorganic-organic hybrid nanostructured semiconductors. J. Am. Chem. Soc. 129, 3157–3162 (2007). (10.1021/ja065799e) / J. Am. Chem. Soc. by XY Huang (2007)
  15. Lüth, H. Solid Surfaces, Interfaces and Thin Films (Spring press, Germany, 2010). (10.1007/978-3-642-13592-7)
  16. Mcginley, C. et al. Evidence for surface reconstruction on InAs nanocrystals. Phys. Rev. B 65, 245308 (2002). (10.1103/PhysRevB.65.245308) / Phys. Rev. B by C Mcginley (2002)
  17. Madl, M. et al. High resolution photocurrent imaging by atomic force microscopy on the example of single buried InAs quantum dots. Semicond. Sci. Technol. 25, 065010 (2010). (10.1088/0268-1242/25/6/065010) / Semicond. Sci. Technol. by M Madl (2010)
  18. Zhou, K. G. et al. A mixed-solvent strategy for efficient exfoliation of inorganic graphene analogues. Angew. Chem. Int. Ed. 50, 10839–10842 (2011). (10.1002/anie.201105364) / Angew. Chem. Int. Ed. by KG Zhou (2011)
  19. Kim, K. S. et al. Large-scale pattern growth of graphene films for stretchable transparent electrodes. Nature 457, 706–710 (2009). (10.1038/nature07719) / Nature by KS Kim (2009)
  20. Eda, G., Fanchini, G. & Chhowalla, M. Large-area ultrathin films of reduced graphene oxide as a transparent and flexible electronic material. Nat. Nanotech. 3, 270–274 (2008). (10.1038/nnano.2008.83) / Nat. Nanotech. by G Eda (2008)
  21. Venkatachalam, S., Agilan, S., Mangalaraj, D. & Narayandass, Sa. K. Optoelectronic properties of ZnSe thin films. Mater. Sci. Semicond. Process. 10, 128–132 (2007). (10.1016/j.mssp.2007.06.001) / Mater. Sci. Semicond. Process. by S Venkatachalam (2007)
  22. Ling, Y. C. et al. Sn-doped hematite nanostructures for photoelectrochemical water splitting. Nano. Lett. 11, 2119–2125 (2011). (10.1021/nl200708y) / Nano. Lett. by YC Ling (2011)
  23. Goncalves, R. H., Lima, B. H. R. & Leite, E. R. Magnetite colloidal nanocrystals: a facile pathway to prepare mesoporous hematite thin films for photoelectrochemical water splitting. J. Am. Chem. Soc. 133, 6012–6019 (2011). (10.1021/ja111454f) / J. Am. Chem. Soc. by RH Goncalves (2011)
  24. Tafalla, D., Salvador, P. & Benito, R. M. Kinetic approach to the photocurrent transients in water photoelectrolysis at n-TiO2 electrodes. J. Eletrochem. Soc. 137, 1810–1815 (1990). (10.1149/1.2086809) / J. Eletrochem. Soc. by D Tafalla (1990)
  25. Chen, X. B., Liu, L., Yu, P. Y. & Mao, S. S. Increasing solar absorption for photocatalysis with black hydrogenated titanium dioxide nanocrystals. Science 331, 746–750 (2011). (10.1126/science.1200448) / Science by XB Chen (2011)
  26. Bickley, R. L. & Williams, G. C. Relative proportions of rutile and pseudo-brookite phases in the Fe(III)-TiO2 system at elevated temperature. Mater. Chem. Phys. 51, 47–53 (1997). (10.1016/S0254-0584(97)80265-9) / Mater. Chem. Phys. by RL Bickley (1997)
  27. Sun, Y. F. et al. Aqueous synthesis of mesostructured BiVO4 quantum tubes with excellent dual response to visible light and temperature. Nano Res. 9, 620–631 (2010). (10.1007/s12274-010-0022-8) / Nano Res. by YF Sun (2010)
  28. Sun, Y. F. et al. Highly depressed temperature-induced metal-insulator transition in synthetic monodisperse 10-nm V2O3 pseudocubes enclosed by {012} facets. Nanoscale 3, 2609–2614 (2011). (10.1039/c1nr10179j) / Nanoscale by YF Sun (2011)
  29. Li, Q. et al. Highly efficient visible-light-driven photocatalytic hydrogen production of CdS-cluster-decorated graphene nanosheets. J. Am. Chem. Soc. 133, 10878–10884 (2011). (10.1021/ja2025454) / J. Am. Chem. Soc. by Q Li (2011)
  30. Kagan, C. R., Mitzi, D. B. & Dimitrakopoulos, C. D. Organic-inorganic hybrid materials as semiconducting channels in thin-film field-effect transistors. Science 286, 945–947 (1999). (10.1126/science.286.5441.945) / Science by CR Kagan (1999)
Dates
Type When
Created 12 years, 11 months ago (Sept. 11, 2012, 5:23 a.m.)
Deposited 2 years, 7 months ago (Jan. 5, 2023, 7:25 p.m.)
Indexed 2 days, 3 hours ago (Sept. 3, 2025, 5:57 a.m.)
Issued 12 years, 11 months ago (Sept. 11, 2012)
Published 12 years, 11 months ago (Sept. 11, 2012)
Published Online 12 years, 11 months ago (Sept. 11, 2012)
Funders 0

None