Crossref
journal-article
Springer Science and Business Media LLC
Nature Nanotechnology (297)
References
35
Referenced
1,482
-
Wang, Z. L. & Song, J. H. Piezoelectric nanogenerators based on zinc oxide nanowire arrays. Science 312, 242–246 (2006).
(
10.1126/science.1124005
) / Science by ZL Wang (2006) -
Tian, B. Z. et al. Coaxial silicon nanowires as solar cells and nanoelectronic power sources. Nature 449, 885–890 (2007).
(
10.1038/nature06181
) / Nature by BZ Tian (2007) -
Wang, Z. L. Self-powered nanotech–nanosize machines need still tinier power plants. Sci. Am. 298, 82–87 (2008).
(
10.1038/scientificamerican0108-82
) / Sci. Am. by ZL Wang (2008) -
Pan, C. F. et al. Nanowire-based high performance ‘micro fuel cell’: one nanowire, one fuel cell. Adv. Mater. 20, 1644–1648 (2008).
(
10.1002/adma.200700515
) / Adv. Mater. by CF Pan (2008) -
Dorfman, A., Kumar, N. & Hahm, J. I. Highly sensitive biomolecular fluorescence detection using nanoscale ZnO platforms. Langmuir 22, 4890–4895 (2006).
(
10.1021/la053270+
) / Langmuir by A Dorfman (2006) -
Zang, J. F. et al. Tailoring zinc oxide nanowires for high performance amperometric glucose sensor. Electroanalysis 19, 1008–1014 (2007).
(
10.1002/elan.200603808
) / Electroanalysis by JF Zang (2007) -
Fan, Z. Y., Wang, D. W., Chang, P. C., Tseng, W. Y. & Lu, J. G. ZnO nanowire field-effect transistor and oxygen sensing property. Appl. Phys. Lett. 85, 5923–5925 (2004).
(
10.1063/1.1836870
) / Appl. Phys. Lett. by ZY Fan (2004) -
Li, Q. H., Liang, Y. X., Wan, Q. & Wang, T. H. Oxygen sensing characteristics of individual ZnO nanowire transistors. Appl. Phys. Lett. 85, 6389–6391 (2004).
(
10.1063/1.1840116
) / Appl. Phys. Lett. by QH Li (2004) -
Wang, X. D., Song, J. H., Liu, J. & Wang, Z. L. Direct-current nanogenerator driven by ultrasonic waves. Science 316, 102–105 (2007).
(
10.1126/science.1139366
) / Science by XD Wang (2007) -
Qin, Y., Wang, X. D. & Wang, Z. L. Microfibre–nanowire hybrid structure for energy scavenging. Nature 451, 809–813 (2008).
(
10.1038/nature06601
) / Nature by Y Qin (2008) -
Liu, J., Fei, P., Zhou, J., Tummala, R. & Wang, Z. L. Toward high output-power nanogenerator. Appl. Phys. Lett. 92, 173105 (2008).
(
10.1063/1.2918840
) / Appl. Phys. Lett. by J Liu (2008) -
Xu, S., Wei, Y. G., Liu, J., Yang, R. & Wang, Z. L. Integrated multilayer nanogenerator fabricated using paired nanotip-to-nanowire brushes. Nano Lett. 8, 4027–4032 (2008).
(
10.1021/nl8027813
) / Nano Lett. by S Xu (2008) -
Xu, S. et al. Optimizing and improving the growth quality of ZnO nanowire arrays guided by statistical design of experiments. ACS Nano 3, 1803–1812 (2009).
(
10.1021/nn900523p
) / ACS Nano by S Xu (2009) -
Lee, S. H. et al. Ordered arrays of ZnO nanorods grown on periodically polarity-inverted surfaces. Nano Lett. 8, 2419–2422 (2008).
(
10.1021/nl801344s
) / Nano Lett. by SH Lee (2008) -
Jasinski, J., Zhang, D., Parra, J., Katkanant, V. & Leppert, V. J. Application of channeling-enhanced electron energy-loss spectroscopy for polarity determination in ZnO nanopillars. Appl. Phys. Lett. 92, 093104 (2008).
(
10.1063/1.2889496
) / Appl. Phys. Lett. by J Jasinski (2008) -
Bae, S. Y. et al. Synthesis of gallium nitride nanowires with uniform [001] growth direction. J. Cryst. Growth 258, 296–301 (2003).
(
10.1016/S0022-0248(03)01562-8
) / J. Cryst. Growth by SY Bae (2003) -
Liu, C. et al. Vapor–solid growth and characterization of aluminum nitride nanocones. J. Am. Chem. Soc. 127, 1318–1322 (2005).
(
10.1021/ja045682v
) / J. Am. Chem. Soc. by C Liu (2005) -
Yang, R. S., Qin, Y., Dai, L. M. & Wang, Z. L. Power generation with laterally packaged piezoelectric fine wires. Nature Nanotech. 4, 34–39 (2009).
(
10.1038/nnano.2008.314
) / Nature Nanotech. by RS Yang (2009) -
Wang, X. D., Liu, J., Song, J. H. & Wang, Z. L. Integrated nanogenerators in biofluid. Nano Lett. 7, 2475–2479 (2007).
(
10.1021/nl0712567
) / Nano Lett. by XD Wang (2007) -
Yang, R. S., Qin, Y., Li, C., Dai, L. M. & Wang, Z. L. Characteristics of output voltage and current of integrated nanogenerators. Appl. Phys. Lett. 94, 022905 (2009).
(
10.1063/1.3072362
) / Appl. Phys. Lett. by RS Yang (2009) -
Shen, D. N. et al. Micromachined PZT cantilever based on SOI structure for low frequency vibration energy harvesting. Sens. Actuat. A 154, 103–108 (2009).
(
10.1016/j.sna.2009.06.007
) / Sens. Actuat. A by DN Shen (2009) -
Roundy, S., Wright, P. K. & Rabaey, J. A study of low level vibrations as a power source for wireless sensor nodes. Comput. Commun. 26, 1131–1144 (2003).
(
10.1016/S0140-3664(02)00248-7
) / Comput. Commun. by S Roundy (2003) -
Gao, Y. & Wang, Z. L. Electrostatic potential in a bent piezoelectric nanowire. The fundamental theory of nanogenerator and nanopiezotronics. Nano Lett. 7, 2499–2505 (2007).
(
10.1021/nl071310j
) / Nano Lett. by Y Gao (2007) -
Yang, R. S., Qin, Y., Li, C., Zhu, G. & Wang, Z. L. Converting biomechanical energy into electricity by a muscle-movement-driven nanogenerator. Nano Lett. 9, 1201–1205 (2009).
(
10.1021/nl803904b
) / Nano Lett. by RS Yang (2009) -
Choi, M. Y. et al. Mechanically powered transparent flexible charge-generating nanodevices with piezoelectric ZnO nanorods. Adv. Mater. 21, 2185–2189 (2009).
(
10.1002/adma.200803605
) / Adv. Mater. by MY Choi (2009) -
Qin, Y., Yang, R. S. & Wang, Z. L. Growth of horizonatal ZnO nanowire arrays on any substrate. J. Phys. Chem. C 112, 18734–18736 (2008).
(
10.1021/jp808869j
) / J. Phys. Chem. C by Y Qin (2008) -
Song, J. H., Zhou, J. & Wang, Z. L. Piezoelectric and semiconducting coupled power generating process of a single ZnO belt/wire. A technology for harvesting electricity from the environment. Nano Lett. 6, 1656–1662 (2006).
(
10.1021/nl060820v
) / Nano Lett. by JH Song (2006) -
Agrawal, R., Peng, B. & Espinosa, H. D. Experimental–computational investigation of ZnO nanowires strength and fracture. Nano Lett. 9, 4177–4183 (2009).
(
10.1021/nl9023885
) / Nano Lett. by R Agrawal (2009) -
Kang, B. S. et al. pH measurements with single ZnO nanorods integrated with a microchannel. Appl. Phys. Lett. 86, 112105 (2005).
(
10.1063/1.1883330
) / Appl. Phys. Lett. by BS Kang (2005) -
Zhou, J. et al. Gigantic enhancement in response and reset time of ZnO UV nanosensor by utilizing Schottky contact and surface functionalization. Appl. Phys. Lett. 94, 191103 (2009).
(
10.1063/1.3133358
) / Appl. Phys. Lett. by J Zhou (2009) -
Li, Z. et al. Cellular level biocompatibility and biosafety of ZnO nanowires. J. Phys. Chem. C 112, 20114–20117 (2008).
(
10.1021/jp808878p
) / J. Phys. Chem. C by Z Li (2008) -
Gao, Z. Y., Ding, Y., Lin, S. S., Hao, Y. & Wang, Z. L. Dynamic fatigue studies of ZnO nanowires by in situ transmission electron microscopy. Phys. Status Solidi 3, 260–262 (2009).
(
10.1002/pssr.200903235
) / Phys. Status Solidi by ZY Gao (2009) -
Xu, S., Lao, C. S., Weintraub, B. & Wang, Z. L. Density-controlled growth of aligned ZnO nanowire arrays by seedless chemical approach on smooth surfaces. J. Mater. Res. 23, 2072–2077 (2008).
(
10.1557/JMR.2008.0274
) / J. Mater. Res. by S Xu (2008) -
Pan, Z. W., Dai, Z. R. & Wang, Z. L. Nanobelts of semiconducting oxides. Science 291, 1947–1949 (2001).
(
10.1126/science.1058120
) / Science by ZW Pan (2001) -
Zang, J. F. et al. Tailoring zinc oxide nanowires for high performance amperometric glucose sensor. Electroanalysis 19, 1008–1014 (2007).
(
10.1002/elan.200603808
) / Electroanalysis by JF Zang (2007)
Dates
Type | When |
---|---|
Created | 15 years, 5 months ago (March 28, 2010, 1:24 p.m.) |
Deposited | 2 years, 3 months ago (May 18, 2023, 8:20 p.m.) |
Indexed | 1 day, 16 hours ago (Sept. 4, 2025, 10:27 a.m.) |
Issued | 15 years, 5 months ago (March 28, 2010) |
Published | 15 years, 5 months ago (March 28, 2010) |
Published Online | 15 years, 5 months ago (March 28, 2010) |
Published Print | 15 years, 4 months ago (May 1, 2010) |
@article{Xu_2010, title={Self-powered nanowire devices}, volume={5}, ISSN={1748-3395}, url={http://dx.doi.org/10.1038/nnano.2010.46}, DOI={10.1038/nnano.2010.46}, number={5}, journal={Nature Nanotechnology}, publisher={Springer Science and Business Media LLC}, author={Xu, Sheng and Qin, Yong and Xu, Chen and Wei, Yaguang and Yang, Rusen and Wang, Zhong Lin}, year={2010}, month=mar, pages={366–373} }