which include spherical assembled CdS nanofibers in poly(vinyl acetate) [158],
dispersed CdS short nanofibers in poly(styrene-alt-maleic anhydride) [159] and very
long, entangled CdSe nanofibers in a polyacrylamide matrix [160]. Nanocomposites with nanoparticles dispersed in the polymer matrix, such as polyacrylamide/
Ag [161], poly(vinyl acetate)/PbS [162], polyacrylamide/CdS [163] and polyacrylonitrile/CdS [164] were also prepared by g-ray irradiation.
References
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et al., J. Mater. Chem. 1993, 3 (2), 203–
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2 Q. W. Chen, Y. T. Qian, Z. Y. Chen
et al., Mater. Lett. 1995, 22 (1–2), 77–
80.
3 H. W. Liao, Y. F. Wang, X. M. Liu et
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4 C. H. An, K. B. Tang, G. Z. Shen et
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5 C. H. An, K. B. Tang, C. R. Wang et
al., Mater. Res. Bull. 2002, 37 (11),
1791–1796.
6 Q. W. Chen, Y. T. Qian, Z. Y. Chen
et al., Physica C, 1994, 224 (3–4), 228–
230.
7 D. L. Zhu, H. Zhu, Y. H. Zhang,
Appl. Phys. Lett. 2002, 80, 1634.
8 Q. W. Chen, G. Zhou, J. S. Zhu et
al., Phys. Lett. 1996, A224 (1–2), 133–
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9 Y. H. Zhang, X. J. Li, L. Zheng et
al., Phys. Rev. Lett. 1998, 81 (8), 1710–
1713.
10 Y. T. Qian, Y. Su, Y. Xie et al., Mater.
Res. Bull. 1995, 30 (5), 601–605.
11 Y. F. Liu, J. H. Zhan, M. Ren et al.,
Mater. Res. Bull. 2001, 36 (7–8), 1231–
1236.
12 J. H. Zeng, J. Yang, Y. Zhu et al.,
Chem. Commun. 2001, (15), 1332–
1333.
13 J. H. Zeng, Y. Zhu, Y. F. Liu et al.,
Mater. Sci. Eng. 2002, B94 (2–3), 131–
135.
14 J. Yang, S. H. Yu, Z. H. Han et al., J.
Solid State Chem. 1999, 146 (2), 387–
389.
15 J. H. Zhan, X. G. Yang, Y. Xie et al.,
J. Mater. Res. 1999, 14 (11), 4418–
4420.
16 Y. Y. Peng, Z. Y. Meng, C. Zhong et
al., J. Solid State Chem. 2001, 159 (1),
170–173.
17 Y. Y. Peng, Z. Y. Meng, C. Zhong et
al., Chem. Lett. 2001, (8), 772–773.
18 J. Q. Hu, B. Deng, Q. Y. Lu et al.,
Chem. Commun. 2000, (8), 715–716.
19 C. R. Wang, K. B. Tang, Q. Yang et
al., Chem. Lett. 2001, (6), 494–495.
20 C. R. Wang, K. B. Tang, Q. Yang et
al., J. Mater. Chem. 2002, 12 (8), 2426–
2429.
21 Q. Yang, K. B. Tang, C. R. Wang et
al., J. Cryst. Growth 2001, 233 (4), 774–
778.
22 C. R. Wang, K. B. Tang, Q. Yang et
al., Inorg. Chem. Commun. 2001, 4 (7),
339–341.
23 J. Q. Hu, B. Deng, W. X. Zhang et
al., Inorg. Chem. 2001, 40 (13), 3130–
3133.
24 J. P. Xiao, Y. Xie, R. Tang et al., J.
Solid State Chem. 2001, 161 (2), 179–
183.
25 J. Q. Hu, B. Deng, K. B. Tang et al.,
J. Mater. Res. 2001, 16 (12), 3411–
3415.
26 J. Q. Hu, B. Deng, C. R. Wang et al.,
Solid State Commun. 2002, 121 (9–10),
493–496.
27 J. Q. Hu, B. Deng, K. B. Tang et al.,
Solid State Sci. 2001, 3 (3), 275–278.
28 J. Q. Hu, B. Deng, W. X. Zhang et
al., Int. J. Inorg. Mater. 2001, 3 (7),
639–642.
29 C. R. Wang, K. B. Tang, Q. Yang et
al., J. Solid State Chem. 2001, 160 (1),
50–53.
30 J. Q. Hu, Q. Y. Lu, B. Deng et al.,
Inorg. Chem. Commun. 1999, 2 (12),
569–571.
7 Solvothermal Synthesis of Non-Oxide Nanomaterials
204
dispersed CdS short nanofibers in poly(styrene-alt-maleic anhydride) [159] and very
long, entangled CdSe nanofibers in a polyacrylamide matrix [160]. Nanocomposites with nanoparticles dispersed in the polymer matrix, such as polyacrylamide/
Ag [161], poly(vinyl acetate)/PbS [162], polyacrylamide/CdS [163] and polyacrylonitrile/CdS [164] were also prepared by g-ray irradiation.
References
1 Y. T. Qian, Q. W. Chen, Z. Y. Chen
et al., J. Mater. Chem. 1993, 3 (2), 203–
205.
2 Q. W. Chen, Y. T. Qian, Z. Y. Chen
et al., Mater. Lett. 1995, 22 (1–2), 77–
80.
3 H. W. Liao, Y. F. Wang, X. M. Liu et
al., Chem. Mater. 2000, 12 (10), 2819.
4 C. H. An, K. B. Tang, G. Z. Shen et
al., Mater. Lett. 2002, 57 (3), 565–568.
5 C. H. An, K. B. Tang, C. R. Wang et
al., Mater. Res. Bull. 2002, 37 (11),
1791–1796.
6 Q. W. Chen, Y. T. Qian, Z. Y. Chen
et al., Physica C, 1994, 224 (3–4), 228–
230.
7 D. L. Zhu, H. Zhu, Y. H. Zhang,
Appl. Phys. Lett. 2002, 80, 1634.
8 Q. W. Chen, G. Zhou, J. S. Zhu et
al., Phys. Lett. 1996, A224 (1–2), 133–
136.
9 Y. H. Zhang, X. J. Li, L. Zheng et
al., Phys. Rev. Lett. 1998, 81 (8), 1710–
1713.
10 Y. T. Qian, Y. Su, Y. Xie et al., Mater.
Res. Bull. 1995, 30 (5), 601–605.
11 Y. F. Liu, J. H. Zhan, M. Ren et al.,
Mater. Res. Bull. 2001, 36 (7–8), 1231–
1236.
12 J. H. Zeng, J. Yang, Y. Zhu et al.,
Chem. Commun. 2001, (15), 1332–
1333.
13 J. H. Zeng, Y. Zhu, Y. F. Liu et al.,
Mater. Sci. Eng. 2002, B94 (2–3), 131–
135.
14 J. Yang, S. H. Yu, Z. H. Han et al., J.
Solid State Chem. 1999, 146 (2), 387–
389.
15 J. H. Zhan, X. G. Yang, Y. Xie et al.,
J. Mater. Res. 1999, 14 (11), 4418–
4420.
16 Y. Y. Peng, Z. Y. Meng, C. Zhong et
al., J. Solid State Chem. 2001, 159 (1),
170–173.
17 Y. Y. Peng, Z. Y. Meng, C. Zhong et
al., Chem. Lett. 2001, (8), 772–773.
18 J. Q. Hu, B. Deng, Q. Y. Lu et al.,
Chem. Commun. 2000, (8), 715–716.
19 C. R. Wang, K. B. Tang, Q. Yang et
al., Chem. Lett. 2001, (6), 494–495.
20 C. R. Wang, K. B. Tang, Q. Yang et
al., J. Mater. Chem. 2002, 12 (8), 2426–
2429.
21 Q. Yang, K. B. Tang, C. R. Wang et
al., J. Cryst. Growth 2001, 233 (4), 774–
778.
22 C. R. Wang, K. B. Tang, Q. Yang et
al., Inorg. Chem. Commun. 2001, 4 (7),
339–341.
23 J. Q. Hu, B. Deng, W. X. Zhang et
al., Inorg. Chem. 2001, 40 (13), 3130–
3133.
24 J. P. Xiao, Y. Xie, R. Tang et al., J.
Solid State Chem. 2001, 161 (2), 179–
183.
25 J. Q. Hu, B. Deng, K. B. Tang et al.,
J. Mater. Res. 2001, 16 (12), 3411–
3415.
26 J. Q. Hu, B. Deng, C. R. Wang et al.,
Solid State Commun. 2002, 121 (9–10),
493–496.
27 J. Q. Hu, B. Deng, K. B. Tang et al.,
Solid State Sci. 2001, 3 (3), 275–278.
28 J. Q. Hu, B. Deng, W. X. Zhang et
al., Int. J. Inorg. Mater. 2001, 3 (7),
639–642.
29 C. R. Wang, K. B. Tang, Q. Yang et
al., J. Solid State Chem. 2001, 160 (1),
50–53.
30 J. Q. Hu, Q. Y. Lu, B. Deng et al.,
Inorg. Chem. Commun. 1999, 2 (12),
569–571.
7 Solvothermal Synthesis of Non-Oxide Nanomaterials
204
