Intercalation of organic ammonium ions into layered graphite oxide

被引:248
作者
Liu, ZH [1 ]
Wang, ZM [1 ]
Yang, XJ [1 ]
Ooi, KT [1 ]
机构
[1] Natl Inst Adv Ind Sci & Technol, Marine Resources & Environm Res Inst, Takamatsu, Kagawa 7610395, Japan
关键词
D O I
10.1021/la011677i
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The intercalation of large organic ammonium ions (tetramethylammonium ions (TMA(+)), tetraethylammonium ions (TEA(+)), tetrapropylammonium ions (TPA(+)), and tetrabutylammonium ions (TBA(+))) into layered graphite oxide (GO) was systematically investigated. The intercalation reactions were completed at 25 degreesC after 3 days, and stable colloidal suspensions were obtained at TAA(l)/H-8 = 5 (molar ratio of tetraalkylammonium ions (TAA(+)) over exchangeable protons in GO). The sediments after centrifuging the colloidal suspensions showed amorphous phase X-ray diffraction patterns, indicating that exfoliation of the layered structure into nanosheets took place in the suspension. When the sediments were dried at 70 degreesC for 3 days, layered structures of TAA(+)-intercalated GO materials with basal spacings of 1.56, 1.67, 1.84, and 2.37 =, respectively, appeared. The basal spacing of the layered compounds decreased with a decrease of relative humidity during drying. When the dried TAA(+)-intercalated GO compounds were exposed to a humid saturated atmosphere, the basal spacing increased gradually, finally becoming an amorphous structure. The maximum saturation of intercalated TAA(+) ions into GO decreased with the increase in alkyl chain length. When the TAA(+)-intercalated materials were washed with distilled water and acid-treated, a process of deintercalation of TAA(+) ions from the interlayer occurred. A schematic model for the deintercalation-intercalation involving a exfoliation process is proposed. The layered structure of TAA(+)-intercalated GO materials is discussed in terms of the dimension of the GO layer and the sizes of H2O molecules and TAA(+) ions.
引用
收藏
页码:4926 / 4932
页数:7
相关论文
共 25 条
[1]  
BARRER RM, 1978, ZEOLITES CLAY MINERA, P407
[2]   Preparation and layer-by-layer self-assembly of silver nanoparticles capped by graphite oxide nanosheets [J].
Cassagneau, T ;
Fendler, JH .
JOURNAL OF PHYSICAL CHEMISTRY B, 1999, 103 (11) :1789-1793
[3]   Preparation and characterization of ultrathin films layer-by-layer self-assembled from graphite oxide nanoplatelets and polymers [J].
Cassagneau, T ;
Guérin, F ;
Fendler, JH .
LANGMUIR, 2000, 16 (18) :7318-7324
[4]  
Clearfield A., 1982, INORGANIC ION EXCHAN
[5]   Selective liquid sorption properties of hydrophobized graphite oxide nanostructures [J].
Dékány I. ;
Krüger-Grasser R. ;
Weiss A. .
Colloid and Polymer Science, 1998, 276 (7) :570-576
[6]   Pore structure analysis of exfoliated graphite using image processing of scanning electron micrographs [J].
Inagaki, M ;
Suwa, T .
CARBON, 2001, 39 (06) :915-920
[7]   Ultrathin graphite oxide-polyelectrolyte composites prepared by self-assembly: Transition between conductive and non-conductive states [J].
Kotov, NA ;
Dekany, I ;
Fendler, JH .
ADVANCED MATERIALS, 1996, 8 (08) :637-&
[8]   Layer-by-layer assembly of ultrathin composite films from micron-sized graphite oxide sheets and polycations [J].
Kovtyukhova, NI ;
Ollivier, PJ ;
Martin, BR ;
Mallouk, TE ;
Chizhik, SA ;
Buzaneva, EV ;
Gorchinskiy, AD .
CHEMISTRY OF MATERIALS, 1999, 11 (03) :771-778
[9]   High temperature treatment of polyfurfuryl alcohol graphite oxide intercalation compound [J].
Kyotani, T ;
Moriyama, H ;
Tomita, A .
CARBON, 1997, 35 (08) :1185-1187
[10]   Structure of graphite oxide revisited [J].
Lerf, A ;
He, HY ;
Forster, M ;
Klinowski, J .
JOURNAL OF PHYSICAL CHEMISTRY B, 1998, 102 (23) :4477-4482