Department of Chemical and Materials Engineering, University of Kentucky, Lexington, KY, USA.
J Hazard Mater. 2012 Apr 15;211-212:208-17. doi: 10.1016/j.jhazmat.2011.08.025. Epub 2011 Aug 12.
Catalytic hydrodechlorination (HDC) is an effective means of detoxifying chlorinated waste. Involvement of spillover hydrogen is examined in gas phase dechlorination of chlorobenzene (CB) and 1,3-dichlorobenzene (1,3-DCB) over Pd and Ni. The catalytic action of single component Pd and Ni, Pd/Al(2)O(3), Ni/Al(2)O(3) and physical mixtures with Al(2)O(3) has been considered. Catalyst activation is characterized in terms of temperature programmed reduction, the supported nano-scale metal phase by transmission electron microscopy and hydrogen/surface interactions by chemisorption/temperature programmed desorption. Pd/Al(2)O(3) generated significantly greater amounts of spillover hydrogen (by a factor of over 40) compared with Ni/Al(2)O(3). Hydrogen spillover on Pd/Al(2)O(3) far exceeded the chemisorbed component, whereas chemisorbed and spillover content was equivalent for Ni/Al(2)O(3). Inclusion of Al(2)O(3) with Ni and Ni/Al(2)O(3) increased spillover with an associated increase in specific HDC rate (up to a factor of 10) and enhanced selectivity to benzene from 1,3-DCB. HDC rate delivered by Pd and Pd/Al(2)O(3) was largely unaffected by the addition of Al(2)O(3). This can be attributed to the higher intrinsic HDC performance of Pd that results in appreciable HDC activity under conditions where Ni/Al(2)O(3) was inactive. Spillover was partially recovered (post TPD) for the Ni samples but the loss was irreversible in the case of Pd.
催化加氢脱氯(HDC)是一种有效解毒氯化废物的方法。考察了在气相中脱氯苯(CB)和 1,3-二氯苯(1,3-DCB)时,Pd 和 Ni 上的溢流氢的参与。考虑了单一组分 Pd 和 Ni、Pd/Al(2)O(3)、Ni/Al(2)O(3)和与 Al(2)O(3)的物理混合物的催化作用。通过程序升温还原、透射电子显微镜下的负载纳米级金属相以及化学吸附/程序升温脱附来表征催化剂的活化。与 Ni/Al(2)O(3)相比,Pd/Al(2)O(3)产生了显著更多的溢流氢(超过 40 倍)。Pd/Al(2)O(3)上的氢溢流远远超过了化学吸附部分,而对于 Ni/Al(2)O(3),化学吸附和溢流含量是相等的。将 Al(2)O(3)与 Ni 和 Ni/Al(2)O(3)一起包含在内会增加溢流,并使特定的 HDC 速率(高达 10 倍)和从 1,3-DCB 中提高苯的选择性增加。Pd 和 Pd/Al(2)O(3)的 HDC 速率受 Al(2)O(3)的添加影响不大。这可以归因于 Pd 的更高内在 HDC 性能,使得在 Ni/Al(2)O(3)不活跃的条件下,就具有可观的 HDC 活性。对于 Ni 样品,溢流部分(在 TPD 后)得到了恢复,但在 Pd 的情况下,损失是不可逆转的。