Sugar-anionic clay composite materials: intercalation of pentoses in layered double hydroxide

被引:60
作者
Aisawa, S [1 ]
Hirahara, H [1 ]
Ishiyama, K [1 ]
Ogasawara, W [1 ]
Umetsu, Y [1 ]
Narita, E [1 ]
机构
[1] Iwate Univ, Fac Engn, Dept Chem Engn, Morioka, Iwate 0208551, Japan
关键词
layered double hydroxides; intercalation; calcination-rehydration reaction; sugar; nanocomposite; organic inorganic hybrid materials;
D O I
10.1016/S0022-4596(03)00234-2
中图分类号
O61 [无机化学];
学科分类号
070301 ; 081704 ;
摘要
The intercalation of non-ionized guest pentoses (ribose and 2-deoxyribose) into the Mg-Al and Zn-Al layered double hydroxides (LDHs) was carried out at 298 K by the calcination-rehydration reaction using the Mg-Al and Zn-Al oxide precursors calcined at 773 K. The resulting solid products reconstructed the LDH structure with incorporating pentoses, and the maximum amount of ribose intercalated by the Mg-Al oxide precursor was approximately 20 times that by the Zn-Al oxide precursor. The ribose/Mg-Al LDH was observed to have the expanded LDH structure with a broad (003) spacing of 0.85 nm. As the thickness of the LDH hydroxide basal layer is 0.48 nm, the interlayer distance of the ribose/Mg-Al LDH is 0.37 nm. This value corresponds to molecular size of ribose in thickness (0.36 nm), supporting that ribose is horizontally oriented in the interlayer space of LDH. The maximum amount of ribose intercalated by the Mg-Al oxide precursor was approximately 5 times that of 2-deoxyribose. Ribose is substituted only by the hydroxyl group at C-2 position for 2-deoxyribose. Therefore, the number of hydroxyl group of sugar is essentially important for the intercalation of sugar molecule into the LDH, suggesting that the intercalation behavior of sugar for the LDH was greatly influenced by hydrogen bond between hydroxyl group of the intercalated pentose and the LDH hydroxide basal layers. (C) 2003 Elsevier Inc. All rights reserved.
引用
收藏
页码:342 / 348
页数:7
相关论文
共 30 条
[21]   Synthesis, characterization and applications of layered double hydroxides containing organic guests [J].
Newman, SP ;
Jones, W .
NEW JOURNAL OF CHEMISTRY, 1998, 22 (02) :105-115
[22]   Anionic clay modified electrodes: Electron transfer mediated by electroactive nickel, cobalt or manganese sites in layered double hydroxide films [J].
Qiu, JB ;
Villemure, G .
JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 1997, 428 (1-2) :165-172
[23]   Cycleability of Ni-Fe hydroxides in nonaqueous electrolyte [J].
Sakaebe, H ;
Uchino, H ;
Azuma, M ;
Shikano, M ;
Higuchi, S .
SOLID STATE IONICS, 1998, 113 :35-41
[24]  
SATO T, 1992, J CHEM TECHNOL BIOT, V55, P385
[25]   Removal of phosphate by layered double hydroxides containing iron [J].
Seida, Y ;
Nakano, Y .
WATER RESEARCH, 2002, 36 (05) :1306-1312
[26]   Layered double hydroxides exchanged with tungstate as biomimetic catalysts for mild oxidative bromination [J].
Sels, B ;
De Vos, D ;
Buntinx, M ;
Pierard, F ;
Kirsch-De Mesmaeker, A ;
Jacobs, P .
NATURE, 1999, 400 (6747) :855-857
[27]   PREFERENTIAL INTERCALATION OF ISOMERS OF NAPHTHALENECARBOXYLATE IONS INTO THE INTERLAYER OF LAYERED DOUBLE HYDROXIDES [J].
TAGAYA, H ;
SATO, S ;
MORIOKA, H ;
KADOKAWA, J ;
KARASU, M ;
CHIBA, K .
CHEMISTRY OF MATERIALS, 1993, 5 (10) :1431-1433
[28]   Bioinorganic clays: Synthesis and characterization of amino- and polyamino acid intercalated layered double hydroxides [J].
Whilton, NT ;
Vickers, PJ ;
Mann, S .
JOURNAL OF MATERIALS CHEMISTRY, 1997, 7 (08) :1623-1629
[29]   Intercalation of carboxymethyl-beta-cyclodextrin into magnesium-aluminum layered double hydroxide [J].
Zhao, HT ;
Vance, GF .
JOURNAL OF THE CHEMICAL SOCIETY-DALTON TRANSACTIONS, 1997, (11) :1961-1965
[30]  
Zhao HT, 1998, CLAY CLAY MINER, V46, P712