Li Panpan, Yu Feng, Altaf Naveed, Zhu Mingyuan, Li Jiangbing, Dai Bin, Wang Qiang
Key Laboratory for Green Processing of Chemical Engineering of Xinjiang Bingtuan, School of Chemistry and Chemical Engineering, Shihezi University, Shihezi 832003, China.
Environmental Functional Nanomaterials (EFN) Laboratory, College of Environmental Science and Engineering, Beijing Forestry University, Beijing 100083, China.
Materials (Basel). 2018 Jan 31;11(2):221. doi: 10.3390/ma11020221.
CH₄ as the paramount ingredient of natural gas plays an eminent role in C1 chemistry. CH₄ catalytically converted to syngas is a significant route to transmute methane into high value-added chemicals. Moreover, the CO/CO₂ methanation reaction is one of the potent technologies for CO₂ valorization and the coal-derived natural gas production process. Due to the high thermal stability and high extent of dispersion of metallic particles, two-dimensional mixed metal oxides through calcined layered double hydroxides (LDHs) precursors are considered as the suitable supports or catalysts for both the reaction of methanation and methane reforming. The LDHs displayed compositional flexibility, small crystal sizes, high surface area and excellent basic properties. In this paper, we review previous works of LDHs applied in the reaction of both methanation and methane reforming, focus on the LDH-derived catalysts, which exhibit better catalytic performance and thermal stability than conventional catalysts prepared by impregnation method and also discuss the anti-coke ability and anti-sintering ability of LDH-derived catalysts. We believe that LDH-derived catalysts are promising materials in the heterogeneous catalytic field and provide new insight for the design of advance LDH-derived catalysts worthy of future research.
甲烷作为天然气的主要成分,在C1化学中起着重要作用。甲烷催化转化为合成气是将甲烷转化为高附加值化学品的重要途径。此外,CO/CO₂甲烷化反应是CO₂增值和煤制天然气生产过程的有效技术之一。由于金属颗粒具有高热稳定性和高分散度,通过煅烧层状双氢氧化物(LDHs)前驱体制备的二维混合金属氧化物被认为是甲烷化反应和甲烷重整反应的合适载体或催化剂。LDHs具有组成灵活性、小晶体尺寸、高比表面积和优异的碱性。本文综述了LDHs在甲烷化反应和甲烷重整反应中的应用研究,重点关注了由LDHs衍生的催化剂,其表现出比浸渍法制备的传统催化剂更好的催化性能和热稳定性,并讨论了由LDHs衍生的催化剂的抗积炭能力和抗烧结能力。我们认为,由LDHs衍生的催化剂是多相催化领域中有前景的材料,并为先进的LDHs衍生催化剂的设计提供了新的见解,值得未来研究。