Unraveling the Surface State Evolution of IrO2 in Ethane Chemical Looping Oxidative Dehydrogenation

被引:21
作者
Ping, Lulu [1 ,2 ]
Zhang, Yuan [1 ]
Wang, Baojun [1 ,2 ]
Fan, Maohong [3 ,4 ,5 ]
Ling, Lixia [2 ]
Zhang, Riguang [1 ,2 ]
机构
[1] Taiyuan Univ Technol, State Key Lab Clean & Efficient Coal Utilizat, Taiyuan 030024, Shanxi, Peoples R China
[2] Taiyuan Univ Technol, Coll Chem Engn & Technol, Taiyuan 030024, Shanxi, Peoples R China
[3] Univ Wyoming, Dept Chem & Petr Engn, Laramie, WY 82071 USA
[4] Georgia Inst Technol, Sch Civil & Environm Engn, Atlanta, GA 30332 USA
[5] Univ Wyoming, Sch Energy Resources, Laramie, WY 82071 USA
基金
中国国家自然科学基金; 国家重点研发计划;
关键词
ethane; oxidative dehydrogenation; chemical looping; IrO2; catalyst; DFT calculations; kinetic Monte Carlo; INTENSIFIED ETHYLENE PRODUCTION; TOTAL-ENERGY CALCULATIONS; SHELL REDOX CATALYSTS; FINDING SADDLE-POINTS; PROPANE DEHYDROGENATION; IRO2(110) SURFACE; PARTICLE-SIZE; METHANE; ACTIVATION; KINETICS;
D O I
10.1021/acscatal.2c05770
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Based on the advantages of favorable thermodynamics and coking resistance of ethane oxidative dehydrogenation and the challenge of low ethylene selectivity, chemical looping oxidative dehydrogenation (CL-ODH) over the IrO2 catalyst was examined, including the dehydrogenation and regeneration processes. The stoichiometric S-IrO2 and reduced R-IrO2 catalysts as two extreme states of the IrO2 surface structure with dynamic changes were considered. Density functional theory (DFT) calculations and kinetic Monte Carlo simulations showed that the mechanisms of ethane dehydrogenation over S-IrO2 and RIrO2 catalysts were quite different. Over the S-IrO2 catalyst, ethane oxidative dehydrogenation to C2H4(g) with H2O(g), CO(g), and CO2(g) taking away surface lattice oxygen, followed by lattice oxygen migration from the bulk to the surface, leads to the reduction of the S-IrO2 catalyst. Over the R-IrO2 catalyst, ethane directly dehydrogenates to C2H4(g) and H2(g). Furthermore, the oxidation degree in the regeneration process is greater than the Ov concentration in the dehydrogenation process, which can easily achieve oxygen replenishment in the regeneration process. More importantly, the IrO2 catalyst can be neither completely reduced in the dehydrogenation process nor completely oxidized in the regeneration process, both S-IrO2 and R-IrO2 simultaneously exist for the IrO2 catalyst, and both 750 K and 0.8 bar C2H6(g) pressure were obtained to be the optimal reaction conditions; thus, for ethane CL-ODH over the IrO2 catalyst, the proposed mechanism starts from the oxidative dehydrogenation process; with the consumption of surface lattice oxygen and the oxygen migration from the bulk to the surface, the oxidative and nonoxidative dehydrogenations occur simultaneously until the regeneration. The present study broadens the understanding of ethane CL-ODH over metal oxide catalysts and provides valuable information for the optimization of the CL-ODH process and the development of other high-performance metal oxide catalysts in other alkane CLODH processes.
引用
收藏
页码:1381 / 1399
页数:19
相关论文
共 77 条
[41]   Comparison of methods for finding saddle points without knowledge of the final states [J].
Olsen, RA ;
Kroes, GJ ;
Henkelman, G ;
Arnaldsson, A ;
Jónsson, H .
JOURNAL OF CHEMICAL PHYSICS, 2004, 121 (20) :9776-9792
[42]   Thickness-dependent properties of sprayed iridium oxide thin films [J].
Patil, PS ;
Chigare, PS ;
Sadale, SB ;
Seth, T ;
Amalnerkar, DP ;
Kawar, RK .
MATERIALS CHEMISTRY AND PHYSICS, 2003, 80 (03) :667-675
[43]  
Perdew JP, 1997, PHYS REV LETT, V78, P1396, DOI 10.1103/PhysRevLett.77.3865
[44]   Beyond mean-field approximations for accurate and computationally efficient models of on-lattice chemical kinetics [J].
Pineda, M. ;
Stamatakis, M. .
JOURNAL OF CHEMICAL PHYSICS, 2017, 147 (02)
[45]   Kinetic Monte Carlo Simulations Unveil Synergic Effects at Work on Bifunctional Catalysts [J].
Prats, Hector ;
Posada-Perez, Sergio ;
Rodriguez, Jose A. ;
Sayos, Ramon ;
Illas, Francesc .
ACS CATALYSIS, 2019, 9 (10) :9117-9126
[46]   Propane Oxidative Dehydrogenation Using Consecutive Feed Injections and Fluidizable VOx/γAl2O3 and VOx/ZrO2-γAl2O3 Catalysts [J].
Rostom, Samira ;
de Lasa, Hugo I. .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2017, 56 (45) :13110-13125
[47]   Catalytic Dehydrogenation of Light Alkanes on Metals and Metal Oxides [J].
Sattler, Jesper J. H. B. ;
Ruiz-Martinez, Javier ;
Santillan-Jimenez, Eduardo ;
Weckhuysen, Bert M. .
CHEMICAL REVIEWS, 2014, 114 (20) :10613-10653
[48]   Identification of a Selectivity Descriptor for Propane Dehydrogenation through Density Functional and Microkinetic Analysis on Pure Pd and Pd Alloys [J].
Seemakurthi, Ranga Rohit ;
Canning, Griffin ;
Wu, Zhenwei ;
Miller, Jeffrey T. ;
Datye, Abhaya K. ;
Greeley, Jeffrey .
ACS CATALYSIS, 2021, 11 (15) :9588-9604
[49]   Optimization methods for finding minimum energy paths [J].
Sheppard, Daniel ;
Terrell, Rye ;
Henkelman, Graeme .
JOURNAL OF CHEMICAL PHYSICS, 2008, 128 (13)
[50]   A pathwise derivative approach to the computation of parameter sensitivities in discrete stochastic chemical systems [J].
Sheppard, Patrick W. ;
Rathinam, Muruhan ;
Khammash, Mustafa .
JOURNAL OF CHEMICAL PHYSICS, 2012, 136 (03)