EPR studies of the formation mechanism of the mesoporous materials MCM-41 and MCM-50

被引:113
|
作者
Zhang, JY [1 ]
Luz, Z [1 ]
Goldfarb, D [1 ]
机构
[1] WEIZMANN INST SCI,DEPT CHEM PHYS,IL-76100 REHOVOT,ISRAEL
来源
JOURNAL OF PHYSICAL CHEMISTRY B | 1997年 / 101卷 / 36期
关键词
D O I
10.1021/jp9709621
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The formation mechanism of the hexagonal, MCM-41, and the lamellar, MCM-50, mesoporous materials, prepared at room temperature with the surfactant cetyltrimethylammonium chloride (CTAC) and tetraethylorthosilicon (TEOS), was studied by in situ EPR spectroscopy using the spin probe 4-(N,N-dimethyl-N-hexadecyl)ammonium-2,2,6,6-tetramethylpiperidinyloxy iodide(CAT16). This probe has a structure similar to that of the surfactant molecules with the nitroxyl radical situated at the head group. Accordingly, it probes the interface between the organic and inorganic phases during the formation of M41S materials. The EPR spectrum of CAT16 in the reaction gel, prior to the addition of TEOS, consists of a superposition of two subspectra due to spin probe: molecules in micelles and in the aqueous phase, respectively. For a gel composition which forms MCM-41, the addition of TEOS leads to a gradual transformation of the micellar subspectrum into a characteristic rigid limit spectrum. This observation provides direct evidence that micellar structures present in the initial reaction mixture serve as precursors for the final mesoporous product. The temporal evolution of the spectrum is characteristic of an isotropic system undergoing a gradual increase in the microviscosity. The isotropic nature of the spectrum is a consequence of the specific geometry of the CAT16 head group and its motion in the interface region. Comparison of the temporal evolution of the EPR spectrum with that of the X-ray diffraction pattern indicates that the hexagonal long-range order is formed already 5-8 min after mixing the reagents, whereas the formation of the inorganic phase, which is apparently responsible for the slowdown of the spin probe motion, is considerably slower (>1.5 h). The latter process begins only after a critical amount of TEOS is added to the mixture. These results are consistent with a mechanism whereby the addition of TEOS initially forms clusters of rodlike micelles coated with silicate anions, followed by the condensation of the silicate anions at the interface to yield the final product. By monitoring the peak height of the central EPR line, phenomenological kinetic profiles of the reaction were obtained. These curves were quite different for MCM-41;md MCM-50 and they provide qualitative information regarding the sequence of transformations which occur during the reaction. Specifically, these curves show that while no intermediate phases occur during the formation of MCM-41, several phase transformations take place when MCM-50 is formed and the reaction is significantly slower.
引用
收藏
页码:7087 / 7094
页数:8
相关论文
共 50 条
  • [21] Characterisation and catalytic properties of MCM-41 and Pd/MCM-41 materials
    Koh, CA
    Nooney, R
    Tahir, S
    CATALYSIS LETTERS, 1997, 47 (3-4) : 199 - 203
  • [23] Characterisation and catalytic properties of MCM-41 and Pd/MCM-41 materials
    C.A. Koh
    R. Nooney
    S. Tahir
    Catalysis Letters, 1997, 47 : 199 - 203
  • [24] Formation process of MCM-41 precursor and porous texture of MCM-41
    Naono, H
    Hakuman, M
    Tsunehisa, T
    Tamura, N
    Nakai, K
    JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2000, 224 (02) : 358 - 365
  • [25] Understanding molecular motion mechanism of phase change materials in mesoporous MCM-41
    Li, Ang
    Chen, Xiao
    Guo, Tingting
    Hai, Guangtong
    Liu, Panpan
    Yu, Han
    Xu, Jianhang
    MICROPOROUS AND MESOPOROUS MATERIALS, 2021, 312
  • [26] Positron Annihilation Studies of Mesoporous Silica MCM-41
    Williams, J. F.
    Guagliardo, P.
    Sudarshan, K.
    Ranganathaiah, C.
    Koutsantonis, G.
    Hondow, N.
    Samarin, S.
    16TH INTERNATIONAL CONFERENCE ON POSITRON ANNIHILATION (ICPA-16), 2013, 443
  • [27] Spectroscopic monitoring for the formation of mesoporous MCM-41 materials upon microwave irradiation
    Sung-Suh, HM
    Kim, DS
    Park, YK
    Park, SE
    RESEARCH ON CHEMICAL INTERMEDIATES, 2000, 26 (03) : 283 - 294
  • [28] Spectroscopic monitoring for the formation of mesoporous MCM-41 materials upon microwave irradiation
    Hyung Mi Sung-Suh
    Dae Sung Kim
    Yong-Ki Park
    Sang-Eon Park
    Research on Chemical Intermediates, 2000, 26 : 283 - 294
  • [29] Understanding the Mechanism of Chirality Transfer in the Formation of a Chiral MCM-41 Mesoporous Silica
    Guo, Zhen
    Du, Yu
    Chen, Yuanting
    Ng, Siu-Choon
    Yang, Yanhui
    JOURNAL OF PHYSICAL CHEMISTRY C, 2010, 114 (34): : 14353 - 14361
  • [30] Incorporation of molybdenum into mesoporous MCM-41
    Djajanti, SD
    Howe, RF
    PROGRESS IN ZEOLITE AND MICROPOROUS MATERIALS, PTS A-C, 1997, 105 : 2067 - 2074