NH3adsorption on MCM-41 and Ti-grafted MCM-41. FTIR, DR UV–Vis–NIR and photoluminescence studies

傅里叶变换红外光谱 泛音 光致发光 光谱学 分析化学(期刊) 煅烧 红外光谱学 路易斯酸 漫反射 吸附 化学 红外线的 分子 分子振动 材料科学 物理化学 催化作用 谱线 有机化学 化学工程 光学 工程类 物理 量子力学 光电子学 天文
作者
Enrica Gianotti,Valeria Dellarocca,Leonardo Marchese,Gianmario Martra,Salvatore Coluccia,Thomas Maschmeyer
出处
期刊:Physical Chemistry Chemical Physics [Royal Society of Chemistry]
卷期号:4 (24): 6109-6115 被引量:65
标识
DOI:10.1039/b207231a
摘要

NH3 was used as molecular probe to monitor the nature of both Brønsted and Lewis acid sites as well as co-ordination sphere of Ti(IV) centres in Ti-grafted MCM-41 by means of FTIR, DR UV-Vis-NIR and photoluminescence spectroscopies. A bare MCM-41 sample was also studied for comparison. Diffuse reflectance UV–Vis–NIR spectroscopy was used to investigate both electronic and vibrational properties of Ti-MCM-41. The UV–Vis region (55 000–14 300 cm−1) gave information on the co-ordination of Ti(IV) ions and the NIR region (14 300–4000 cm−1) on overtones and combinations of fundamental modes of surface OH and adsorbed NH3 falling in the medium IR (MIR) region. Significant effect related to the anarmonicity of the oscillators were observed. MCM-41, after calcination at 550 °C in O2, exhibits only isolated Si–OH groups (fundamental νOH stretching band at 3745 cm−1, overtone at 7321 cm−1 and combination of stretching and bending modes at 4530 cm−1). Ti-containing MCM-41 shows, besides isolated Si–OH groups, OH groups likely close to Ti Lewis acid sites (fundamental at 3725 cm−1, overtone at 7300 cm−1 and combination of stretching and bending modes at 4530 cm−1). NH3 was used as molecular probe to study the acidity of such materials by analysing the vibrational features of adsorbed ammonia in the NIR and MIR region. FTIR spectroscopy also revealed that the Brønsted groups are sufficiently acidic to protonate some ammonia molecules, to produce ammonium ions. DR UV–Vis and photoluminescence studies of Ti-MCM-41 revealed the presence of Ti(IV) Lewis sites in tetrahedral co-ordination, which, by the insertion of NH3 molecules, enlarge the co-ordination sphere from tetrahedral to octahedral.
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