YanoK.J. Polym. Sci. Part A: Polym. Chem., 35, 1997, p. 2289.
8.
Garcia-MartinezJ. M.J. Polym. Sci. Part B: Polym. Phys., 38, 2000, p. 1564.
9.
PinnavaiaT. J., and BeallG. W. (Eds.), Polymer– clay nanocomposites.Wiley, New York, 2000.
10.
ShenY.-H.Chemosphere, 44, 2001, pp. 989–995.
11.
ChenZ.J. Appl. Polym. Sci., 75, 2000, pp. 796–801.
12.
OkadoA.Mater. Res. Soc. Symp. Proc., 171, 1990, p. 45.
13.
LeszekA.Rheologica Acta, 41, 2002, pp. 394–407.
14.
HsuS. L.-C., and ChangK.-C.Polymer, 43, 2002, pp. 4097–4101.
15.
WagenerR., and ReisingerT. J. G.Polymer, 44, 2003, pp. 7513–7518.
16.
LiX.Macromol. Rapid Commun.
17.
TyanH.-L.Polymer, 40, 1999, pp. 4877–4886.
18.
VaiaR.Macromolecules, 33, 2000, 2000–2004.
19.
OkamotoM.Polymer, 41, 2000, 3887–3890.
20.
ChowW. S.Polymer, 44, 2003, pp. 7427–7440.
21.
AntipovE. M.Structure and deformation behaviour of nanocomposites based on polypropylene and modified clays. Vys. Soed., A45, No. 11, 2003, pp. 1885–1899.
22.
SurG.Polymer, 42, 2001, pp. 9783–9789.
23.
WangZ., and PinnnavaiaT.Chem. Mater., 10, 1988, pp. 3769–3771.
24.
ChangJ.-H.Polymer, 45, 2004, pp. 919–926.
25.
AntipovE. M.Structure and deformation behaviour of nanocomposites based on low-density polyethylene and modified clays. Vys. Soed., A45, No. 11, 2003, pp. 1874–1884.
26.
LanT.Proc. ACS PMSE, 71, 1994, pp. 527–528.
27.
PinnavaiaT. J.Science, 220, 1983, p. 365.
28.
MessersmithP. B., and GiannelisE. P.Chem. Mater., 5, 1993, p. 1064.
29.
GiannelisE. P.Adv. Mater., 8, 1996, p. 29.
30.
GilmanJ. W.Appl. Clay Sci., 15, 1999, p. 31.
31.
GreenlandD. G.J. Colloid. Sci., 18, 1963, p. 647.
32.
ChangJ. H., and ParkK. M.Polym. Engng Sci., 41, 2001, p. 2226.
33.
GreenlandD. G.J. Colloid. Sci., 18, 1963, p. 647.
34.
ChangJ. H., and ParkK. M.Polym. Engng Sci., 41, 2001, p. 2226.
35.
VaiaR. A.Adv. Mater., 8, 1996, p. 29.
36.
VaiaR. A.Macromolecules, 28, 1995, p. 8080.
37.
FukushimaY.Clay Miner., 23, 1988, p. 27.
38.
VaiaR. A.Adv. Mater., 8, 1996, p. 29.
39.
VaiaR. A.Macromolecules, 28, 1995, p. 8080.
40.
FukushimaY.Clay Miner., 23, 1988, p. 27.
41.
AkelahA., and MoetA.J. Mater. Sci., 31, 1996, p. 3589.
42.
ChvalunS. N.Priroda, No. 7, 2000.
43.
BrinkerC. J., and SchererG. W.Sol–gel science. Boston, 1990.
44.
MasciaL., and TangT.Polymer, 39, 1998, p. 3045.
45.
TamakiR., and ChujoY.Chem. Mater., 11, 1999, p. 1719.
46.
DennisH. R.Polymer, 42, 2001, 9513–9522.
47.
GiannelisE. P.Adv. Mater., 8, 1996, pp. 29–35.
48.
KornmannX.Polymer, 42, 2001, pp. 1303–1310.
49.
VoulgarisD., and PetridisD.Polymer, 43, 2002, pp. 2213–2218.
50.
TyanH.-L.Polymer, 40, 1999, pp. 4877–4886.
51.
DavisC. H.J. Polym. Sci. Part B: Polym. Phys., 40, 2002, p. 2661.
52.
MorganA. B., and GilmanJ. W.J. Appl. Polym. Sci., 87, 2003, p. 1329.
53.
ChangJ. H.J. Polym. Sci. Part B: Polym. Phys., 41, 2003, p. 94.
54.
ChangJ. H.J. Appl. Polym. Sci., 84, 2002, p. 2294.
55.
XuH.Macromolecules, 35, 2002, p. 8788.
56.
HaddadT. S., and LichtenhanJ. D.Macromolecules, 29, 1996, p. 7302.
57.
MatherP. T.Macromolecules, 29, 1996, p. 7302.
58.
HsuS. L. C., and ChangK. C.Polymer, 43, 2002, p. 4097.
59.
ChangJ. H.Polymer, 43, 2002, p. 2969.
60.
FornesT. D.Polymer, 43, 2002, p. 5915.
61.
ChangJ. H.Polymer, 43, 2002, p. 2969.
62.
FornesT. D.Polymer, 43, 2002, p. 5915.
63.
WenJ., and WikesG. L.Chem. Mater., 8, 1996, p. 1667.
64.
ZhuZ. K.J. Appl. Polym. Sci., 3, 1999, p. 2063.
65.
LanT., and PinnavaiaT. J.Chem. Mater., 6, 1994, p. 2216.
66.
Masenelli-VarlotK.J. Polym. Sci. Part B: Polym. Phys., 40, 2002, p. 272.
67.
YanoK.J. Polym. Sci. Part A: Polym. Chem., 35, 1997, p. 2289.
68.
ShiaD.Polym. Engng Sci., 27, 1987, p. 887.
69.
CurtinW. A.J. Am. Ceram. Soc., 74, 1991, p. 2837.
70.
ChawlaK. K.Composite materials science and engineering.Springer, New York, 1987.