location: Current position: Home >> Scientific Research >> Paper Publications

The physicochemical properties and catalytic performance of carbon-covered alumina for oxidative dehydrogenation of ethylbenzene with CO2

Hits:

Indexed by:期刊论文

Date of Publication:2018-01-01

Journal:APPLIED SURFACE SCIENCE

Included Journals:SCIE、EI

Volume:427

Page Number:1011-1018

ISSN No.:0169-4332

Key Words:Carbon; Alumina; Dehydrogenation; Ethylbenzene; Carbon dioxide

Abstract:In order to correlate the physicochemical properties of carbon-covered alumina (CCA) materials with their catalytic performance for oxidative dehydrogenation of ethylbenzene with CO2 (CO2-ODEB), a series of CCA materials with diverse carbon contents (8.7-31.3 wt%) and pyrolysis temperatures (600-800 degrees C), which were synthesized via an impregnation method followed by pyrolysis, were applied. These catalytic materials were characterized by TGA, N-2 physisorption, XRD, Raman spectroscopy and XPS techniques. It was found that the catalytic performance of these CCA materials highly depended on their physicochemical properties, and the optimum CCA catalyst exhibited much better catalytic stability than conventional hydroxyl carbon nanotubes. Below an optimum value of carbon content, the CCA catalyst preserved the main pore characteristics of the Al2O3 support and its catalytic activity increased with the carbon content. Excessive carbon loading resulted in significant textural alterations and thereby decreased both the ethylbenzene conversion and styrene selectivity. On the other hand, high pyrolysis temperature was detrimental to the ordered graphitic structure of the carbon species within the Al2O3 pore. The decreased ordered graphitic degree was found to be associated with the loss of the surface active carbonyl groups, consequently hampering the catalytic efficiency of the CCA catalyst. (C) 2017 Elsevier B.V. All rights reserved.

Pre One:MIL-101-NH2固载酸性离子液体构建双功能催化剂:温和条件下催化二氧化碳的环加成反应

Next One:Theoretical insight into the carrier mobility anisotropy of hole transport material Spiro-OMeTAD