Ni 2 P Catalysts Supported on TiO 2 -Pillared Sepiolite for Thiophene Hydrodesulfurization

Ni 2 P Catalysts Supported on TiO 2 -Pillared Sepiolite for Thiophene Hydrodesulfurization
复制标题

DOI:
10.3866/pku.whxb201209281
复制
发表时间:
2012-11
影响因子:
10.9
通讯作者:
Li Hui;南昌 南昌大学化学系;Xuan XiangLan;Chen Wei-qing;Shi Qiu-jie;Liu Wenming;W. Xiang;南昌 南昌大学应用化学研究所
Li Hui;南昌 南昌大学化学系;Xuan XiangLan;Chen Wei-qing;Shi Qiu-jie;Liu Wenming;W. Xiang;南昌 南昌大学应用化学研究所
中科院分区:
化学2区
文献类型:
--
作者:
Li Hui;南昌 南昌大学化学系;Xuan XiangLan;Chen Wei-qing;Shi Qiu-jie;Liu Wenming;W. Xiang;南昌 南昌大学应用化学研究所

文献摘要

被引文献

相似文献

Samples containing a nickel phosphide precursor were synthesized by the impregnation method using TiO2-pillared sepiolite (Ti-Sep) as a support, nickel hydroxide as a nickel source, and phosphorous acid as a phosphorus source. From these precursor samples, Ni2P/Ti-Sep catalysts with Ni content ranging from 5%-25% (w, mass fraction) were prepared by temperature-programmed reduction. Thiophene hydrodesulfurization (HDS) was used to investigate the HDS activity of the catalysts. The catalysts were characterized by X-ray powder diffraction (XRD), N2 adsorption-desorption, thermal gravity analysis (TGA), transmission electron microscope (TEM), and Fourier transform infrared spectroscopy (FTIR). The results demonstrated that the specific surface area and pore volume of Ti-Sep were enlarged and catalyst thermal stability was improved. In addition, the layer spacing of sepiolite was also increased. As a consequence, the active component, Ni2P, can be well dispersed on the interlayer and outer surface of Ti-Sep. Moreover, the layered sepiolite structure remained intact in the Ni2P/Ti-Sep catalysts. Consequently, thiophene conversion on Ni2P/Ti-Sep is improved compared with Ni2P/Na-Sep (NaCl-modified sepiolite) and Ni2P/HCl-Sep (HCl-modified sepiolite), which were prepared on sepiolite without Ti-pillaring. Ni2P/Ti-Sep with a Ni loading of 15% (w) shows the highest activity among all of the 2924 廖 辉等: TiO2柱撑海泡石负载Ni2P的噻吩加氢脱硫性能 No.12 studied catalysts, on which the conversion of thiophene can reach 100% at 400 °C.