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Functional Nanowires

Published online by Cambridge University Press:  31 January 2011

Abstract

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Nanotechnology offers the promise of enabling revolutionary advances in diverse areas ranging from electronics, optoelectronics, and energy to healthcare. Underpinning the realization of such advances are the nanoscale ma te rials and corresponding nanodevices central to these application areas. Semiconductor nanowires and nanobelts are emerging as one of the most powerful and diverse classes of functional nanoma terials that are having an impact on science and technology. In this issue of MRS Bulletin, several leaders in this vibrant field of research present brief reviews that highlight key aspects of the underlying materials science of nanowires, basic device functions achievable with these materials, and developing applications in electronics and at the interface with biology. This article introduces the controlled synthesis, patterned and designed self-assembly, and unique applications of nanowires in nanoelectronics, nano-optoelectronics, nanosensors, nanobiotechnology, and energy harvesting.

Type
Research Article
Copyright
Copyright © Materials Research Society 2007

References

1. For an introduction, see Sci. Am. (September 2001).Google Scholar
2.Meindl, J.D., Chen, Q., and Davis, J.A., Science 293 (2001) p. 2044.CrossRefGoogle Scholar
3.Lieber, C.M., Sci. Am. 285 (2001) p. 58.CrossRefGoogle Scholar
4.International Technology Roadmap for Semi-conductors, 2005 Edition: Emerging Research De-vices, www.itrs.net/Links/2005ITRS/ERD2005. pdf (accessed January 2007).Google Scholar
5.Heath, J.R., Kuekes, P.J., Snider, G.S., and Williams, R.S., Science 280 (1998) p. 1716.CrossRefGoogle Scholar
6.Hu, J., Odom, T.W., and Lieber, C.M., Acc. Chem. Res. 32 (1999) p. 435.CrossRefGoogle Scholar
7.Pan, Z.W., Dai, Z.R., and Wang, Z.L., Science 209 (2001) p. 1947.CrossRefGoogle Scholar
8.Wang, Z.L., J. Phys.: Condens. Matter 16 (2004) p. 829.Google Scholar
9.Duan, X. and Lieber, C.M., Adv. Mater. 12 (2001) p. 298.3.0.CO;2-Y>CrossRefGoogle Scholar
10.Cui, Y., Duan, X., Hu, J., and Lieber, C.M., J. Phys. Chem. B 104 (2000) p. 5213.CrossRefGoogle Scholar
11.Duan, X., Huang, Y., Cui, Y., Wang, J., and Lieber, C.M., Nature 409 (2001) p. 66.CrossRefGoogle Scholar
12.Cui, Y. and Lieber, C.M., Science 291 (2001) p. 851.CrossRefGoogle Scholar
13.Arnold, M., Avouris, P., and Wang, Z.L., Phys. Chem. B 107 (2002) p. 659.CrossRefGoogle Scholar
14.Cui, Y. and Lieber, C.M., Science 291 (2001) p. 851.CrossRefGoogle Scholar
15.Huang, M.H., Mao, S., Feick, H., Yan, H., Wu, Y., Kind, H., Weber, E., Russo, R., and Yang, P., Science 292 (2001) p. 1897.CrossRefGoogle Scholar
16.Huang, Y., Duan, X., Cui, Y., Lauhon, L., Kim, K., and Lieber, C.M., Science 294 (2001) p. 1313.CrossRefGoogle Scholar
17.Comini, E., Faglia, G., Sberveglieri, G., Pan, Z., and Wang, Z.L., Appl. Phys. Lett. 81 (2002) p. 1869.CrossRefGoogle Scholar
18.Bai, X.D., Gao, P.X., Wang, Z.L., and Wang, E.G., Appl. Phys. Lett. 82 (2003) p. 4806.CrossRefGoogle Scholar
19.Buchine, B.A., Hughes, W.L., Degertekin, F.L., and Wang, Z.L., Nano Lett. 6 (2006) p. 1155.CrossRefGoogle Scholar
20.Wang, Z.L. and Song, J.H., Science 312 (2006) p. 242.CrossRefGoogle ScholarPubMed
21.Kong, X.Y. and Wang, Z.L., Nano Lett. 3 (2003) p. 1625.CrossRefGoogle Scholar
22.Kong, X.Y. and Wang, Z.L., Appl. Phys. Lett. 84 (2004) p. 975.CrossRefGoogle Scholar
23.Hughes, W.L. and Wang, Z.L., J. Am. Chem. Soc. 126 (2004) p. 6703.CrossRefGoogle Scholar
24.Kong, X.Y., Ding, Y., Yang, R.S., and Wang, Z.L., Science 203 (2004) p. 1348.CrossRefGoogle Scholar
25.Gao, P.X., Ding, Y., Mai, W.J., Hughes, W.L., Lao, C.S., and Wang, Z.L., Science 309 (2005) p. 1700.CrossRefGoogle Scholar
26.Wang, X.D., Zhou, J., Song, J.H., Liu, J., Xu, N.S., and Wang, Z.L., Nano Lett. 6 (2006) p. 2768.CrossRefGoogle Scholar
27.He, J.H., Hsin, C.H., Chen, L.J., and Wang, Z.L., Adv. Mater. (2006) in press.Google Scholar
28. See special issues on carbon nanotubes in MRS Bull. 29 (April 2004) and MRS Bull. 31 (April 2006).Google Scholar
29.Huang, Y., Duan, X., Wei, Q., and Lieber, C.M., Science 291 (2001) p. 630.CrossRefGoogle Scholar
30.Seker, F., Meeker, K., Kuech, T.F., and Ellis, A.B., Chem. Rev. 100 (2000) p. 2505.CrossRefGoogle Scholar
31.Iler, R.K., The Chemistry of Silica (Wiley, New York, 1979).Google Scholar
32.Wagner, R.S. and Ellis, W.C., Appl. Phys. Lett. 4 (1964) p. 89.CrossRefGoogle Scholar
33.Trentler, T.J., Hickman, K.M., Goel, S.C., Viano, A.M., Gibbons, P.C., and Buhro, W.E., Science 270 (1995) p. 1791.CrossRefGoogle Scholar
34.Trentler, T.J., Goel, S.C., Hickman, K.M., Viano, A.M., Chiang, M.Y., Beatty, A.M., Gibbons, P.C., and Buhro, W.E., J. Am. Chem. Soc. 119 (1997) p. 2172.CrossRefGoogle Scholar
35.Yang, P. and Lieber, C.M., Science 273 (1996) p. 1836.CrossRefGoogle Scholar
36.Gudiksen, M.S., Lauhon, L.J., Wang, J., Smith, D., and Lieber, C.M., Nature 415 (2002) p. 617.CrossRefGoogle Scholar
37.Wu, Y., Fan, R., and Yang, P., Nano Lett. 2 (2002) p. 83.CrossRefGoogle Scholar
38.Bjork, M.T., Ohlosson, B.J., Sass, T., Persson, A.I., Thelander, C., Magnusson, M.H., Deppert, K., Wallenberg, L.R., and Samuelson, L., Nano Lett. 2 (2002) p. 87.CrossRefGoogle Scholar
39.Lauhon, L., Gudiksen, M.S., Wang, D., and Lieber, C.M., Nature 420 (2002) p. 57.CrossRefGoogle Scholar
40.Gao, P.X. and Wang, Z.L., J. Phys. Chem. B 106 (2002) p. 12653.CrossRefGoogle Scholar
41.Liu, H., Hu, C.G., and Wang, Z.L., Nano Lett. 6 (2006) p. 1535.CrossRefGoogle Scholar
42.Hu, C.G., Liu, H., Lao, C.S., Zhang, L.Y., Davidovic, D., and Wang, Z.L., J. Phys. Chem. B 110 (2006) p. 14050.CrossRefGoogle Scholar
43.Hu, C.G., Liu, H., Dong, W.T., Zhang, Y.Y., Bao, G., Liao, C.S., and Wang, Z.L., Adv. Mater. (2006) DOI: 10.1002/adma.200601300.CrossRefGoogle Scholar
44.Smith, P.A., Nordquist, C.D., Jackson, T.N., Mayer, T.S., Martin, B.R., Mbindyo, J., and Mallouk, T.E., Appl. Phys. Lett. 77 (2000) p. 1399.CrossRefGoogle Scholar
45.Whang, D., Jin, S., Wu, Y., and Lieber, C.M., Nano Lett. 3 (2003) p. 1255.CrossRefGoogle Scholar
46.Jin, S., Whang, D., McAlpine, M.C., Friedman, R.S., Wu, Y., and Lieber, C.M., Nano Lett. 4 (2004) p. 915.CrossRefGoogle Scholar
47.Zheng, G., Lu, W., Jin, S., and Lieber, C.M., Adv. Mater. 16 (2004) p. 1890.CrossRefGoogle Scholar
48.Bryllert, T., Wernersson, L.E., Froberg, L.E., and Samuelson, L., IEEE Electron Device Lett. 27 (2006) p. 323.CrossRefGoogle Scholar
49.Zhong, Z.H., Wang, D.L., Cui, Y., Bockrath, M.W., and Lieber, C.M., Science 302 (2003) p. 1377.CrossRefGoogle Scholar
50.Yang, C., Zhong, Z.H., and Lieber, C.M., Science 310 (2005) p. 1304.CrossRefGoogle Scholar
51.Xiang, J., Lu, W., Hu, Y.J., Wu, Y., Yan, H., and Lieber, C.M., Nature 441 (2006) p. 489.CrossRefGoogle Scholar
52.Patolsky, F., Zheng, G., Hayden, O., Lakadamyali, M., Zhuang, X., and Lieber, C.M., Proc. Nat. Acad. Sci. USA 101 (2004) p. 14017.CrossRefGoogle Scholar
53.Patolsky, F., Zheng, G., and Lieber, C.M., Nanomedicine 1 (2006) p. 51.CrossRefGoogle Scholar
54.Cui, Y., Wei, Q., Park, H., and Lieber, C.M., Science 293 (2001) p. 1289.CrossRefGoogle Scholar
55.Huang, Y., Duan, X.F., and Lieber, C.M., Small 1 (2005) p. 142.CrossRefGoogle Scholar
56.Duan, X.F., Huang, Y., Agarwal, R., and Lieber, C.M., Nature 421 (2003) p. 241.CrossRefGoogle Scholar
57.Hayden, O., Agarwal, R., and Lieber, C.M., Nat. Mater. 5 (2006) p. 352.CrossRefGoogle Scholar
58.Qian, F., Li, Y., Gradec‘’ak, S., Wang, D.L., Barrelet, C. J., and Lieber, C.M., Nano Lett. 4 (2004) p. 1975.CrossRefGoogle Scholar
59.Qian, F., Gradec‘’ak, S., Li, Y., Wen, C.Y., and Lieber, C.M., Nano Lett. 5 (2005) p. 2287.CrossRefGoogle Scholar
60.Patolsky, F., Timko, B.P., Yu, G.H., Fang, Y., Greytak, A.B., Zheng, G.F., and Lieber, C.M., Science 313 (2006) p. 1100.CrossRefGoogle Scholar
61.Gao, P.X., Song, J.H., Liu, J., and Wang, Z.L., Adv. Mater. 19 (2007) p. 67.CrossRefGoogle Scholar
62.Song, J.H., Zhou, J., and Wang, Z.L., Nano Lett. 6 (2006) p. 1656.CrossRefGoogle Scholar