Chemical Looping Combustion over a Lanthanum Nickel Perovskite-Type Oxygen Carrier with Facilitated O 2– Transport
作者:Qiongqiong Jiang, Yali Cao, Xiangyu Liu, Hao Zhang, Hui Hong, Hongguang Jin · 发表于:Energy & Fuels · 年份:2020 · DOI:10.1021/acs.energyfuels.0c01038 · 被引用次数:23 · 研究领域:Chemical Looping and Thermochemical Processes、Advancements in Solid Oxide Fuel Cells、Catalysis and Oxidation Reactions
Chemical looping combustion (CLC) can achieve the benefits of efficient conversion of hydrocarbon fuels and zero-energy CO 2 capture using oxygen carriers (OCs) with facilitated oxygen transport properties. The current study details the use of Cu- and Ca-doped lanthanum nickel perovskite-type materials as the OC in CLC processes. By incorporation of lanthanum nickel oxide with copper and calcium, the oxygen storage capacity and average transport rate of La 1– y Ca y Cu x Ni 1– x O 3 are up to 7.8 wt % and 0.82 wt % min –1, respectively, during the methane CLC process at 400 °C, whereas undoped LaNiO 3 cannot react with methane at a low temperature. Simultaneously, substituted lanthanum nickel oxides can decrease the oxygen transport temperature by about 70 °C compared to undoped lanthanum nickel oxide. X-ray diffraction, Brunauer–Emmett–Teller, and scanning electron microscopy of the samples were characterized in terms of particle properties and morphology to unveil the rational reasons of the high oxygen transport at lower temperatures. The enhancement of the specific surface area and stable porous morphology in La 1– y Ca y Cu x Ni 1– x O 3 can both facilitate the oxygen transport in CLC processes. Experiments were executed to investigate the reactivity of the redox materials on the standpoints of oxygen capacity, stability, and regenerability. Hydrogen and methane as the fuels are both considered in this study. La 1– y Ca y Cu x Ni 1– x O 3 showed favorable reactivity and ...