Bi2S3 Nanoflowers Synthesized via Hydrothermal Method

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Abstract:

Bi2S3 flowerlike patterns were synthesized via a facile hydrothermal approach without using any surfactant and acid. The morphology, structure, phase composition, of the as-prepared Bi2S3 products were characterized using scanning electron microscopy, X-ray diffraction, high-resolution transmission and electron microscopy, respectively. The experimental results showed that the product possesses good distribution of morphology, well crystallized nanostructure.

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Advanced Materials Research (Volumes 989-994)

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11-14

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July 2014

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© 2014 Trans Tech Publications Ltd. All Rights Reserved

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[1] B.B. Nayak, H.N. Acharya, G.B. Mitra, B.K. Mathur, Thin Solid Films 105 (1983) 17-24.

Google Scholar

[2] H. Cui, X. Liu, X. Li, J. Wang, F. Han, X. Zhang, et al., J. Solid State Chem. 177 (2004) 4001-4006.

Google Scholar

[3] B. X. Chen, C. Uher, Chem. Mater, 9: 1655-1658, (1997).

Google Scholar

[4] Rabin, O; Perez, J. M.; Grimm, J; Wojtkiewicz, G; Weissleder, R. Nat. Mater. 2006, 5, 117.

Google Scholar

[5] B. Zhang, X.C. Ye, W. Y. Hou, Y. Zhao, Y. Xie, J. Phys. Chem. B, 110: 8978-8985, (2006).

Google Scholar

[6] R. R. Ahire, N. G. Deshpande, Y. G. Gudage, A. A. Sagade, S. D. Chavhan, D.M. Phase, Ramphal Sharma, Sensors and Actuators A, 140: 207-214, (2007).

DOI: 10.1016/j.sna.2007.06.039

Google Scholar

[7] Yue Wang, Jing Chen, Peng Wang, Ling Chen, Yu-Biao Chen, Li-Ming Wu, J. Phys. Chem. C, 113: 16009-16014, (2009).

Google Scholar

[8] Gangqiang Zhu, Peng Liu, Jianping Zhou, Xiaobing Bian, Xiaobo Wang, Jiao Li, Bin Chen, Materials Letters 62 (2008) 2335-2338.

Google Scholar

[9] Mingwang Shao, Wu Zhang, Zhengcui Wu, Youbao Ni, Journal of Crystal Growth 265 (2004) 318-321.

Google Scholar

[10] Anukorn Phuruangrat, Titipun Thongtem, Somchai Thongtem, Materials Letters 63 (2009) 1496-1498.

DOI: 10.1016/j.matlet.2009.03.051

Google Scholar

[11] Rong He, Xuefeng Qian, Jie Yin, Zikang Zhu, Journal of Crystal Growth 252 (2003) 505-510.

Google Scholar

[12] Guangjian Xing, Zhenjian Feng, Guanghua Chen, Wang Yao, Xuemei Song, Materials Letters 57 (2003) 4555-4559.

Google Scholar

[13] Nikolay Petkov, Ju Xu, Michael A. Morris, Justin D. Holmes, J. Phys. Chem. C 2008, 112, 7345-7355.

Google Scholar

[14] Jiang, J.; Yu, S. H. Chem. Mater. 2005, 17, 6094-6100.

Google Scholar

[15] Lu Tian, Han Yao Tan, and Jagadese J. Vittal, Crystal Growth & Design, 8(2): 734-738, (2008).

Google Scholar

[16] Jing Tang and A. Paul Alivisatos, Nano Letters, 6(12): 2701-2706, (2006).

Google Scholar

[17] Lianshan Li, Ruiguo Cao, Zhijian Wang, Jingjian Li, and Limin Q, J. Phys. Chem. C 2009, 113, 18075-18081.

Google Scholar

[18] Lu J, Han Q, Yang X, Lu L, Wang X. Mater Lett 2007; 61: 3425-8.

Google Scholar

[19] Dong L, Chu Y, Zhang W. Mater Lett 2008; 62: 4269-72.

Google Scholar

[20] Lihong Dong , Ying Chu , Wei Zhang, Materials Letters 62 (2008) 4269-4272.

Google Scholar

[21] Juan Lu, Qiaofeng Han, Xujie Yang, Lude Lu, Xin Wang, Materials Letters 61 (2007) 3425-3428.

Google Scholar

[22] Xuebo Caoa, Xianmei Lana, Cui Zhaoa, Wenjun Shena, Dan Yaoa, Weijian Gao, Journal of Crystal Growth 306 (2007) 225-232.

Google Scholar