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Duan, X., Niu, C., Sahi, V., Chen, J., Parce, J. W., Empedocles, S., & Goldman, J. L. (2003). High-performance thin-film transistors using semiconductor nanowires and nanoribbons. Nature, 425(6955), 274–278.

Authors 7
  1. Xiangfeng Duan (first)
  2. Chunming Niu (additional)
  3. Vijendra Sahi (additional)
  4. Jian Chen (additional)
  5. J. Wallace Parce (additional)
  6. Stephen Empedocles (additional)
  7. Jay L. Goldman (additional)
References 30 Referenced 859
  1. Madelung, O. (ed.) Technology and Applications of Amorphous Silicon (Springer, Berlin, 2000)
  2. Ucjikoga, S. Low-temperature polycrystalline silicon thin-film transistor technologies for system-on-glass displays. MRS Bull. 27, 881–886 (2002) (10.1557/mrs2002.277) / MRS Bull. by S Ucjikoga (2002)
  3. Rogers, J. A. et al. Paper-like electronic displays: Large-area rubber-stamped plastics sheet of electronics and microencapsulated electronic inks. Proc. Natl Acad. Sci. USA 98, 4835–4840 (2001) (10.1073/pnas.091588098) / Proc. Natl Acad. Sci. USA by JA Rogers (2001)
  4. Lee, M. J., Judge, C. P. & Wright, S. W. Thin film transistors for displays on plastic substrate. Solid State Electron. 44, 1431–1434 (2000) (10.1016/S0038-1101(00)00067-8) / Solid State Electron. by MJ Lee (2000)
  5. Garnier, F., Hajlaoui, R., Yassar, A. & Srivastava, P. All-polymer field-effect transistor realized by printing techniques. Science 265, 1684–1686 (1994) (10.1126/science.265.5179.1684) / Science by F Garnier (1994)
  6. Dimitrakopoulos, C. D. & Mascaro, D. J. Organic thin-film transistors: A review of recent advances. IBM J. Res. Dev. 45, 11–27 (2001) (10.1147/rd.451.0011) / IBM J. Res. Dev. by CD Dimitrakopoulos (2001)
  7. Ridley, B. A., Nivi, B. & Jacobson, J. M. All-inorganic field effect transistors fabricated by printing. Science 286, 746–749 (1999) (10.1126/science.286.5440.746) / Science by BA Ridley (1999)
  8. 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)
  9. Cui, Y., Zhong, Z., Wang, D., Wang, W. & Lieber, C. M. High performance silicon nanowire field effect transistors. Nano Lett. 3, 149–152 (2003) (10.1021/nl025875l) / Nano Lett. by Y Cui (2003)
  10. Duan, X., Huang, Y., Cui, Y. & Lieber, C. M. in Molecular Nanoelectronics (eds Reed, M. A. & Lee, T.) (American Scientific Publishers, Stevenson Ranch, 2003) / Molecular Nanoelectronics by X Duan (2003)
  11. Tans, S. J., Verschueren, R. M. & Dekker, C. Room temperature transistor based on a single carbon nanotube. Nature 393, 49–52 (1998) (10.1038/29954) / Nature by SJ Tans (1998)
  12. Javel, A. et al. High-k dielectrics for advanced carbon-nanotube transistors and logic gates. Nature Mater. 1, 241–246 (2002) (10.1038/nmat769) / Nature Mater. by A Javel (2002)
  13. Rosenblatt, S. et al. High-performance electrolyte gated carbon nanotube transistors. Nano Lett. 2, 869–872 (2002) (10.1021/nl025639a) / Nano Lett. by S Rosenblatt (2002)
  14. Cui, Y., Lauhon, L. J., Gudiksen, M. S., Wang, J. & Lieber, C. M. Diameter-controlled synthesis of single crystal silicon nanowires. Appl. Phys. Lett. 78, 2214–2216 (2001) (10.1063/1.1363692) / Appl. Phys. Lett. by Y Cui (2001)
  15. Huang, Y., Duan, X., Wei, Q. & Lieber, C. M. Directed assembly of one dimensional nanostructures into functional networks. Science 291, 630–633 (2001) (10.1126/science.291.5504.630) / Science by Y Huang (2001)
  16. Tao, A. et al. Langmuir-Blodgett silver nanowire monolayers for molecular sensing using surface-enhanced Raman spectroscopy. Nano Lett. DOI:10.102/n1344209 (published online 02 August 2003)
  17. Whang, D., Jin, S., Wu, Y. & Lieber, C. M. Large-scale hierarchical organization of nanowire arrays for integrated nanosystems. Nano Lett. DOI:10.102/nl0345062 (published online 05 August 2003)
  18. Sze, S. M. Physics of Semiconductor Devices (Wiley, New York, 1981) / Physics of Semiconductor Devices by SM Sze (1981)
  19. Hastas, N. A., Dimitriadis, C. A., Brini, J. & Kamarinos, G. Hot-carrier-induced degradation in short p-channel nonhydrogenated polysilicon thin-film transistors. IEEE Trans. Electron Devices 49, 1552–1557 (2002) (10.1109/TED.2002.802622) / IEEE Trans. Electron Devices by NA Hastas (2002)
  20. Mizuno, T., Sugiyama, N., Kurobe, A. & Takagi, S. Advanced SOI p-MOSFET with strained-Si channel on SiGe-on-insulator substrate fabricated by SIMOX technology. IEEE Trans. Electron Devices 48, 1612–1618 (2001) (10.1109/16.936571) / IEEE Trans. Electron Devices by T Mizuno (2001)
  21. Yeh, C., Chen, T., Gudmundsson, J. T. & Lieberman, M. A. Hydrogenation of polysilicon thin-film transistors in a planar inductive H2/Ar discharge. RON Device Lett. 20, 223–225 (1999) (10.1109/55.761021) / RON Device Lett. by C Yeh (1999)
  22. Lauhon, L. J., Gudiksen, M. S., Wang, D. & Lieber, C. M. Epitaxial core-shell and core-multi-shell nanowire heterostructures. Nature 420, 57–61 (2002) (10.1038/nature01141) / Nature by LJ Lauhon (2002)
  23. Duan, X. & Lieber, C. M. General synthesis of compound semiconductor nanowires. Adv. Mater. 12, 298–302 (2000) (10.1002/(SICI)1521-4095(200002)12:4<298::AID-ADMA298>3.0.CO;2-Y) / Adv. Mater. by X Duan (2000)
  24. Duan, X., Huang, Y., Argarawal, R. & Lieber, C. M. Single nanowire injection laser. Nature 421, 241–245 (2003) (10.1038/nature01353) / Nature by X Duan (2003)
  25. Weimer, P. K. The TFT-a new thin-film transistors. Proc. IEEE 56, 1462–1465 (1962) / Proc. IEEE by PK Weimer (1962)
  26. Madelung, O. (ed.) Landolt-Bornstein New Series Vol. III/22a, Semiconductors: Intrinsic properties of Group IV Elements and III–V and II–VI and I–VII Compounds 407 (Springer, Berlin, 1987)
  27. Horowitz, P. & Hill, W. The Art of Electronics (Cambridge Univ. Press, Cambridge, 1989) / The Art of Electronics by P Horowitz (1989)
  28. Duan, X., Huang, Y., Wang, J., Cui, Y. & Lieber, C. M. Indium phosphide nanowires as building blocks for nanoscale electronic and optoelectronic devices. Nature 409, 66–69 (2001) (10.1038/35051047) / Nature by X Duan (2001)
  29. Xia, Y., Qin, D. & Whitesides, G. M. Microcontact printing with a cylindrical rolling stamp: A practical step toward automatic manufacturing of patterns with submicrometer-sized features. Adv. Mater. 8, 1015–1017 (1996) (10.1002/adma.19960081217) / Adv. Mater. by Y Xia (1996)
  30. Sirringhaus, H. et al. High-resolution inkjet printing of all-polymer transistor circuits. Science 290, 2123–2126 (2000) (10.1126/science.290.5499.2123) / Science by H Sirringhaus (2000)
Dates
Type When
Created 21 years, 11 months ago (Sept. 18, 2003, 9:19 a.m.)
Deposited 2 years, 3 months ago (May 18, 2023, 2:18 p.m.)
Indexed 2 weeks, 3 days ago (Aug. 6, 2025, 9:59 a.m.)
Issued 21 years, 11 months ago (Sept. 1, 2003)
Published 21 years, 11 months ago (Sept. 1, 2003)
Published Print 21 years, 11 months ago (Sept. 1, 2003)
Funders 0

None

@article{Duan_2003, title={High-performance thin-film transistors using semiconductor nanowires and nanoribbons}, volume={425}, ISSN={1476-4687}, url={http://dx.doi.org/10.1038/nature01996}, DOI={10.1038/nature01996}, number={6955}, journal={Nature}, publisher={Springer Science and Business Media LLC}, author={Duan, Xiangfeng and Niu, Chunming and Sahi, Vijendra and Chen, Jian and Parce, J. Wallace and Empedocles, Stephen and Goldman, Jay L.}, year={2003}, month=sep, pages={274–278} }