One Step Growth of Semiconductor CdS Uniform Branched Nanowire on FTO

Article Preview

Abstract:

Recentaly, semiconductor nanowires (NWs) exhibit unique electrical, optical, and mechanical properties. Single crystalline CdS uniform branched Nanowire was synthesized by a simple, template-free, low-temperature synthesis of CdS uniform branched Nanowires with the hexagonal wurtzite phase from powder CdS under chemical vapor deposition (CVD) technique is demonstrated. It is shown through extensive spectroscopic and structural characterization that the nanostructures we prepared was branched morphology. X-ray diffraction (XRD), scanning electronic microscopy (SEM), transmission electronic microscopy (TEM) used to study the crystalline structure, composition and morphology of different samples results for this series of Bi2S3 seeds reveal major reaction consequences. Vaporliquidsolid (VLS) processes were proposed for the growth of the CdS uniform branched Nanowire. The results presented here presented the capacity to engineer nanowire p-n junctions exchange interactions via this strategies. Keywords:nanowire,Semiconductor,CVD

You might also be interested in these eBooks

Info:

Periodical:

Pages:

744-749

Citation:

Online since:

January 2014

Keywords:

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2014 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

* - Corresponding Author

[1] Allon I. Hochbaum, Peidong Yang, Chem. Rev. 2010, 110, 527–546.

Google Scholar

[2] Younan. Xia, Peidong. Yang,Advanced Materials, 2003, 15, 5: 353–389.

Google Scholar

[3] Pan AL, Liu RB, Yang Q, JOURNAL OF PHYSICAL CHEMISTRY B, 2005, 109, 51: 24268-24272.

Google Scholar

[4] Junwei Hou, Xiuchun Yang, Applied Surface Science, 2011, 257: 7684–7688.

Google Scholar

[5] Zhiyong Fan, Haleh Razavi, Jae-won Do, Nature Materials, 2009, 8, 648-653.

Google Scholar

[6] Zhiyong Fan, Daniel J. Ruebusch1, Asghar A Rathore, Nano Res. 2009, 2: 829-843.

Google Scholar

[7] Guohua Li, Tianyou Zhai, Yang Jiang, J. Phys. Chem. C , 2011, 115, 9740–9745.

Google Scholar

[8] Zai-Xing Yang, Wei Zhong, Cryst. Growth& Design, 2011, 11, 2172–2176.

Google Scholar

[9] Xiu-Li Fu, Zhi-Jian Peng, Dan Li, Nanotechnology, 2011, 22, 175601.

Google Scholar

[10] Yang Jiang, Wen Jun Zhang, Adv. Funct. Mater. 2007, 17, 1795–1800.

Google Scholar

[11] Minjie Zhou, Haojun Zhu, Xina Wang, Chem. Mater. 2010, 22, 64–69.

Google Scholar

[12] Sanjay K. Apte, Sunil N. Garaje, Gurudas P. Mane, small, 2011, 7, No. 7, 957–964.

Google Scholar

[13] Xiaocheng Jianga, Bozhi Tiana, Jie Xiang, PNAS, 26, 2011, vol. 108, 30, 12212-12216.

Google Scholar

[14] Wang, K, Nano Today, 5(4), 2010: 313-336.

Google Scholar

[15] Liang HW, Advanced Materials, 2010, 22, 35: 3925-3937.

Google Scholar

[16] Sandeep Kumar, Small, 2006, 2, 3: 316–329.

Google Scholar

[17] Logeeswaran V. J, Aaron M. Katzenmeyer, M. Saif Islam, IEEE TRANSACTIONS ON ELECTRON DEVICES, 2010, 57, 8.

Google Scholar

[18] Changhui Ye, Guowen Meng, Yinhai Wang, 2002, J. Phys. Chem. B, 106: 10338-10341.

Google Scholar

[19] Xina Wang, Juan Wang, Minjie Zhou,J. Phys. Chem. C, 2009, 113, 16951–16953.

Google Scholar

[20] Tianyou Zhai, Xiaosheng Fang, ACS Nano, 2009, 3, 4: 949–959.

Google Scholar

[21] Lifeng Dong, Jun Jiao, Michael Coulter, Chemical Physics Letters, 2003, 376: 653–658.

Google Scholar

[22] Weifeng Liu, Chong Jia, Journal of Crystal Growth, 2004, 269, 304–309.

Google Scholar

[23] Nava Shpaisman, ACS Nano, 2010, 4, 4: 1901–(1906).

Google Scholar

[24] Liang Xu, Yong Su, Dong Cai, Materials Letters, 2006, 60: 1420– 1424.

Google Scholar

[25] Muhammad Iqbal Bakti Utama , Nanoscale, 2012, 4, 1422-1435.

Google Scholar

[26] S Neretina1, R A Hughes, J F Britten, Nanotechnology, 2007, 18: 275301.

Google Scholar

[27] C. M. Ruiz, E. Saucedo, O. Martínez, J. Phys. Chem. C, 2007, 111, 15: 5588–5591.

Google Scholar

[28] Peng P; Milliron DJ, NANO LETTERS, 2005, 5, 9: 1809-1813.

Google Scholar

[29] Duan XF, Lieber CM, Advanced Materials, 2000, 12, 4: 298-302.

Google Scholar

[30] Guozhen Shen, Cheol-Jin Lee, Crystal Growth & Design, 2005, 5(3): 1085-1089.

Google Scholar