Liu Chao, Wang Jun, Chen Zexiang, Wang Jianqiang, Shen Meiqing
Key Laboratory for Green Chemical Technology of State Education Ministry, School of Chemical Engineering & Technology, Tianjin University, Tianjin 300072, P. R. China.
Phys Chem Chem Phys. 2021 Mar 11;23(9):5261-5269. doi: 10.1039/d0cp06075e.
Passive NOx adsorbers (PNAs) are capable of trapping NOx at low temperature and releasing the trapped NOx into the gas circuit at higher temperatures, where downstream NOx reduction catalysts are activated. Hydrocarbons have a significant effect on the performance of PNAs, nonetheless research in this area has been overlooked. Here the chemistry of NOx adsorption and desorption in the presence of C3H6 was studied. For different pore-size zeolites (BEA, MFI and CHA), the addition of C3H6 always increased the NOx adsorption capacity at a low temperature and raised the NOx desorption temperature. Spectroscopic and computational investigations were performed using the model Pd/Beta to unravel the relevant mechanism. Fourier transform infrared (FTIR) spectra indicated that more Pd+ was formed in the presence of C3H6, which contributed to higher NOx storage capacity. An intermediate Pd-NC3H6O was probed and its evolution procedure was modeled by density functional theory (DFT) calculations. The results showed that a shielding effect of Pd-NC3H6O on Pd+-NO improved the NOx desorption temperature. This investigation has important implications for how short-chain olefins and even more complex gas mixtures affect the NOx adsorption and desorption performance of Pd/zeolite.
被动式氮氧化物吸附器(PNA)能够在低温下捕获氮氧化物,并在较高温度下将捕获的氮氧化物释放到气体回路中,此时下游的氮氧化物还原催化剂被激活。碳氢化合物对PNA的性能有显著影响,尽管如此,该领域的研究一直被忽视。本文研究了在C3H6存在下氮氧化物的吸附和解吸化学过程。对于不同孔径的沸石(BEA、MFI和CHA),添加C3H6总是会增加低温下的氮氧化物吸附容量,并提高氮氧化物的解吸温度。使用模型Pd/Beta进行了光谱和计算研究,以揭示相关机理。傅里叶变换红外(FTIR)光谱表明,在C3H6存在下会形成更多的Pd+,这有助于提高氮氧化物的存储容量。探测到一种中间产物Pd-NC3H6O,并通过密度泛函理论(DFT)计算对其演化过程进行了建模。结果表明,Pd-NC3H6O对Pd+-NO的屏蔽作用提高了氮氧化物的解吸温度。这项研究对于短链烯烃乃至更复杂的气体混合物如何影响Pd/沸石的氮氧化物吸附和解吸性能具有重要意义。