Crossref Citations
This article has been cited by the following publications. This list is generated based on data provided by
Crossref.
Ravina, Israela
and
Low, Philip F.
1972.
Relation Between Swelling, Water Properties and b-Dimension in Montmorillonite-Water Systems.
Clays and Clay Minerals,
Vol. 20,
Issue. 3,
p.
109.
Lahav, N.
and
Bresler, Eshel
1973.
Exchangeable Cation—Structural Parameter Relationships in Montmorillonite.
Clays and Clay Minerals,
Vol. 21,
Issue. 4,
p.
249.
Andreotti, G.
Loria, A.
Mazzega, E.
and
Valeri, S.
1978.
Dehydration kinetics of a natural montmorillonite.
Il Nuovo Cimento C,
Vol. 1,
Issue. 2,
p.
123.
Rozenson, I.
and
Heller-Kallai, L.
1978.
Reduction and Oxidation of Fe3+ in Dioctahedral Smectites—III. Oxidation of Octahedral Iron in Montmorillonite.
Clays and Clay Minerals,
Vol. 26,
Issue. 2,
p.
88.
MacEwan, Douglas M. C.
and
Wilson, M. J.
1980.
Crystal Structures of Clay Minerals and their X-Ray Identification.
p.
197.
Haque, E.
and
Armeniades, C. D.
1986.
Montmorillonite polymer concrete: Zero‐shrinkage and expanding polymer concrete with enhanced strength.
Polymer Engineering & Science,
Vol. 26,
Issue. 21,
p.
1524.
Tobías, M. M.
Poyato, J.
and
Trillo, J. M.
1989.
Swelling of lanthanide (La, Nd, Gd) montmorillonites heated in air and under vacuum.
Journal of Materials Science,
Vol. 24,
Issue. 9,
p.
3254.
Poyato, J.
Tobias, M.M.
and
Trillo, J.M.
1989.
Retention of tripositive lanthanides (Gd, Ho, Yb, Lu) by montmorillonite.
Applied Clay Science,
Vol. 4,
Issue. 5-6,
p.
499.
Weiss, Charles Arthur
Kirkpatrick, R.James
and
Altaner, Stephen P.
1990.
The structural environments of cations adsorbed onto clays: 133Cs variable-temperature MAS NMR spectroscopic study of hectorite.
Geochimica et Cosmochimica Acta,
Vol. 54,
Issue. 6,
p.
1655.
Gutierrez, Melida
and
Fuentes, Hector R.
1996.
A mechanistic modeling of montmorillonite contamination by cesium sorption.
Applied Clay Science,
Vol. 11,
Issue. 1,
p.
11.
Yan, Laibin
Roth, Charles B.
and
Low, Philip F.
1996.
Changes in the Si−O Vibrations of Smectite Layers Accompanying the Sorption of Interlayer Water.
Langmuir,
Vol. 12,
Issue. 18,
p.
4421.
Krinari, G. A.
Shinkarev, A. A.
and
Giniyatullin, K. G.
2006.
Mineralogy of the clay fraction of water-stable aggregates from dark gray forest soil.
Eurasian Soil Science,
Vol. 39,
Issue. 1,
p.
71.
Burzo, E.
2007.
Phyllosilicates.
p.
366.
Osipov, V. I.
2012.
Nanofilms of adsorbed water in clay: Mechanism of formation and properties.
Water Resources,
Vol. 39,
Issue. 7,
p.
709.
Giniyatullin, K. G.
Shinkarev, A. A.
Shinkarev, A. A.
Krinari, G. A.
Lygina, T. Z.
Gubaidullina, A. M.
Kornilova, A. G.
and
Mel’nikov, L. V.
2012.
Irreversible fixation of organic components in labile interspaces as a mechanism for the chemical stabilization of clay-organic structures.
Eurasian Soil Science,
Vol. 45,
Issue. 11,
p.
1068.
Khramchenkov, M. G.
2013.
Thermo‐Hydromechanical and Chemical Coupling in Geomaterials and Applications.
p.
297.
Zhang, Yanyan
Wei, Maobin
Ma, Yanzhang
and
Chaudhuri, Jharna
2016.
High Resolution Transmission Electron Microscopy Study of Montmorillonite Subjected to Rapid Compression.
Microscopy and Microanalysis,
Vol. 22,
Issue. S3,
p.
1860.
Li, Haitao
Kang, Tianhe
Zhang, Bin
Zhang, Jianjun
and
Ren, Jun
2016.
Influence of interlayer cations on structural properties of montmorillonites: A dispersion-corrected density functional theory study.
Computational Materials Science,
Vol. 117,
Issue. ,
p.
33.
SUZUKI, Ayami
OAKI, Yuya
and
IMAI, Hiroaki
2017.
Synthesis of dispersible nanosheets based on monolayer clays with imidazolium and ammonium cations having long-chain alkyl groups.
Journal of the Ceramic Society of Japan,
Vol. 125,
Issue. 4,
p.
353.
Panahov, Geylani M.
Abbasov, Eldar M.
Yuzbashieva, Afet O.
and
Balakchi, Vusale J.
2019.
FEATURES OF ELECTROLYTIC SOLUTIONS IN CLAYS.
Oil and Gas Business,
p.
93.