Qin Bin, Shen Yuesong, Xu Boyang, Zhu Shemin, Li Peiwen, Liu Youlin
College of Materials Science and Engineering, Nanjing Tech University No. 5 Xinmofan Road Nanjing 210009 China
Jiangsu Collaborative Innovation Center for Advanced Inorganic Function Composites, Nanjing Tech University No. 5 Xinmofan Road Nanjing 210009 China.
RSC Adv. 2018 Feb 16;8(14):7579-7587. doi: 10.1039/c8ra00112j. eCollection 2018 Feb 14.
Ultra-deep desulfurization is a major requirement for upgrading the quality of fuel and power sources for fuel-cells. A series of mesoporous TiO-SiO adsorbents were prepared and investigated for ultra-deep adsorption of benzothiophene (BT) and dibenzothiophene (DBT) from model fuel at ambient conditions. The adsorbents were characterized SEM, XRD, N-BET, FT-IR and NH-TPD techniques. The results revealed that the adsorbent containing 40 wt% silica achieved the desulfurization efficiency higher than 99% when the initial sulfur concentration in the model fuel was 550 ppm. The high desulfurization performance of the adsorbent was attributed to its large specific surface and surface acidity. It also achieved a high sulfur adsorption capacity of 7.1 mg g in a fixed-bed test, while its static saturated sulfur capacity was 13.7 mg g. The order of selectivity towards the adsorption of different organic sulfurs was DBT > BT&DBT > BT. The kinetics of the adsorption of organic sulfur was studied and the results indicated that the pseudo-second order model appropriately fitted the kinetics data. Furthermore, the used adsorbent can be easily regenerated and the desulphurization efficiency of the recovered adsorbent after five regeneration cycles was still maintained at 94.5%.
深度脱硫是提升燃料电池燃料及能源质量的主要要求。制备了一系列介孔TiO-SiO吸附剂,并研究了其在环境条件下从模拟燃料中超深度吸附苯并噻吩(BT)和二苯并噻吩(DBT)的性能。采用扫描电子显微镜(SEM)、X射线衍射(XRD)、N2吸附-脱附(N-BET)、傅里叶变换红外光谱(FT-IR)和程序升温脱附(NH-TPD)技术对吸附剂进行了表征。结果表明,当模拟燃料中初始硫浓度为550 ppm时,二氧化硅含量为40 wt%的吸附剂脱硫效率高于99%。该吸附剂的高脱硫性能归因于其较大的比表面积和表面酸度。在固定床试验中,其硫吸附容量高达7.1 mg/g,静态饱和硫容量为13.7 mg/g。对不同有机硫吸附的选择性顺序为DBT>BT&DBT>BT。研究了有机硫的吸附动力学,结果表明准二级模型能较好地拟合动力学数据。此外,所用吸附剂易于再生,经过5次再生循环后,回收吸附剂的脱硫效率仍保持在94.5%。