Designing Metal/Zeolite Catalysts for Methane Dehydroaromatization: Decoupling External Site Effects, Bimetallic Interactions, and Deactivation Pathways
| dc.contributor.author | Hossain, Md Sifat | en |
| dc.contributor.committeechair | Khatib, Sheima | en |
| dc.contributor.committeemember | Saouma, Caroline Thalia Abdunnur | en |
| dc.contributor.committeemember | Xin, Hongliang | en |
| dc.contributor.committeemember | Samira, Samji | en |
| dc.contributor.department | Chemical Engineering | en |
| dc.date.accessioned | 2026-05-21T08:01:01Z | en |
| dc.date.available | 2026-05-21T08:01:01Z | en |
| dc.date.issued | 2026-05-20 | en |
| dc.description.abstract | Methane, the primary component of natural gas, is an abundant yet underutilized carbon resource that is frequently flared or vented, contributing to greenhouse gas emissions and energy loss. Methane dehydroaromatization (MDA) provides a direct, COx-free route to convert methane into benzene and hydrogen, offering a promising pathway for methane valorization. Mo/ZSM-5 is the most extensively studied catalyst for this reaction, yet its practical application is constrained by rapid deactivation caused by carbon deposition and low product yield. In Mo/ZSM-5 catalysts, the catalytically relevant active phase is widely attributed to Mo carbide or oxycarbide species confined within the zeolite channels. Alongside these desired intrachannel active sites, a fraction of Brønsted acid sites (BAS) and MoOx species can reside on the external surface of the zeolite. These external sites are known to promote unselective reactions, including oligomerization of intermediates and excessive carbon deposition, which accelerate catalyst deactivation. The individual roles of external BAS and external MoOx species remain difficult to distinguish experimentally. In parallel, the incorporation of promoters such as Fe, Ni, or Co into Mo/ZSM-5 has been reported to improve catalytic stability and product selectivity; however, the fundamental origin of these improvements remains unclear, particularly with respect to whether true bimetallic interactions form within the zeolite channels and how they influence active site formation and carbon deposition pathways. This dissertation addresses these challenges by systematically investigating how external site engineering and bimetallic interactions in Mo- and Mo-Fe/ZSM-5 catalysts govern active site formation, catalytic performance, and deactivation pathways, providing a foundation for the rational design of stable MDA catalysts. A key contribution of this work, addressing the unresolved role of external sites, is the decoupling of the individual roles of external metal oxide species and external Brønsted acid sites (BAS). Using selective silylation of ZSM-5 prior to Mo loading and selective extraction of external MoOx, catalysts were synthesized with controlled distributions of metal and acid sites. Catalytic testing, including tandem-bed experiments, revealed that external BAS, while do not activate methane, strongly promote oligomerization of reaction intermediates and products, resulting in decreased benzene selectivity and accelerated formation of hard, graphitic coke. In contrast, external MoOx formed smaller amounts of softer, more disordered carbon and played a comparatively minor role in deactivation. These findings provide a mechanistic basis for targeted external site passivation strategies in Mo/ZSM-5 catalysts. Building on the understanding of external site effects, this dissertation also examines how precursor chemistry influences metal distribution and catalytic performance by introducing Fe2(MoO4)3/ZSM-5 as a bimetallic precursor. Compared with monometallic MoO3/ZSM-5 and mixed MoO3+Fe2O3/ZSM-5 containing equivalent metal loadings, Fe2(MoO4)3/ZSM-5 exhibited superior benzene selectivity and improved catalytic stability. Structural characterization revealed partial segregation of Fe2(MoO4)3 into Fe2O3 and amorphous MoOx during pretreatment, promoting MoOx migration into the zeolite channels while minimizing Mo trapping by external FeOx phases, as observed in MoO3+Fe2O3/ZSM-5 catalysts. Analysis of spent catalysts showed that Fe promotes the formation of carbon nanofibers, contributing to improved catalyst stability. These findings underscore the impact of Mo–Fe interactions originating from the precursor and highlight the importance of understanding Mo–Fe interactions within the zeolite channels. Building on these insights, direct co-impregnation of Mo and Fe into ZSM-5 was employed to promote co-location of both metals within the zeolite channels and to investigate whether true bimetallic active sites can form under MDA conditions. Advanced spectroscopic characterization and DFT modeling collectively confirmed the presence of distinct MoFeOx species anchored within the zeolite channels in fresh catalysts. Upon activation, these bimetallic domains likely evolve into a unique active site, leading to a markedly higher benzene formation rate and lower deactivation rates compared to monometallic Mo/ZSM-5. The enhanced performance is attributed to Mo–Fe synergy, which influences both methane activation pathways and carbon deposition behavior. Together, these studies provide a comprehensive understanding of how external site passivation and bimetallic site formation govern activity, selectivity, and deactivation in Mo- and Mo-Fe/ZSM-5 catalysts. This dissertation offers new design principles for engineering stable, high-performance catalysts for direct methane conversion. | en |
| dc.description.abstractgeneral | Benzene is an essential building block for plastics, pharmaceuticals, and countless consumer products. Today, nearly all benzene is produced from crude-oil based streams, meaning its availability and price fluctuate with the oil market. An alternative route is to make benzene from methane, the main component of natural gas, which is abundant, inexpensive, and often wasted through flaring. Converting methane directly to benzene would not only provide a more stable chemical supply chain but also generate clean hydrogen without producing carbon dioxide. However, achieving this transformation efficiently requires very specialized catalysts. One of the most promising catalysts for this reaction is molybdenum supported on a porous material called ZSM-5, a zeolite featuring an interconnected microporous framework with channels approximately 5.5 Å in diameter. These channels help guide chemical reactions toward benzene instead of unwanted byproducts. Although Mo/ZSM-5 is the best-known catalyst for this process, it stops working quickly because carbon deposits (coke) build up on its surface and block the active sites. Researchers have also explored the addition of small amounts of a second metal to Mo/ZSM-5, such as iron (Fe), which has been shown to improve catalytic performance. However, it remains unclear how these additional metals interact with molybdenum or whether they form cooperative active sites. This dissertation addresses these challenges by examining how the location of different active sites and the interactions between molybdenum and iron affect catalyst performance. First, specially designed Mo/ZSM-5 catalysts were created to separate the roles of two features long suspected to cause deactivation: metal oxide species on the outer surface of the zeolite and acidic sites located on the same external surface. By selectively modifying each of these components, this work shows that external acid sites—not external molybdenum species—are the main drivers of harmful carbon formation and loss of benzene selectivity. This provides a clear strategy for improving catalyst stability through controlling the location of active sites. Next, the dissertation examines how the choice of metal precursor influences catalyst behavior by introducing iron molybdate, Fe2(MoO4)3/ZSM-5, and comparing its activity and stability with MoO3+Fe2O3/ZSM-5 containing equivalent metal loadings. The iron molybdate precursor contains molybdenum and iron already bonded together before mixing with the zeolite. Under reaction conditions, this structure allows molybdenum to migrate into the zeolite channels more effectively while keeping iron on the outside, resulting in higher benzene selectivity and slower deactivation. These results demonstrate that interactions between molybdenum and iron before the catalyst is formed can strongly affect the distribution of active sites. Finally, the work investigates whether true molybdenum–iron active sites can form inside the zeolite channels when both metals are introduced together. Using advanced characterization techniques and computational modeling, this study identifies mixed Mo-Fe species within the pores and shows that these bimetallic sites significantly boost benzene and hydrogen formation while significantly reducing the rate at which the catalyst deactivates. Together, these findings provide a deeper understanding of how the structure and composition of Mo- and Mo-Fe/ZSM-5 catalysts influence their activity and stability. The insights gained offer practical design principles for creating more durable and efficient catalysts, bringing the idea of converting methane directly into valuable chemicals and clean hydrogen closer to reality. | en |
| dc.description.degree | Doctor of Philosophy | en |
| dc.format.medium | ETD | en |
| dc.identifier.other | vt_gsexam:46279 | en |
| dc.identifier.uri | https://hdl.handle.net/10919/143127 | en |
| dc.language.iso | en | en |
| dc.publisher | Virginia Tech | en |
| dc.rights | In Copyright | en |
| dc.rights.uri | http://rightsstatements.org/vocab/InC/1.0/ | en |
| dc.subject | Methane dehydroaromatization | en |
| dc.subject | Mo/ZSM-5 | en |
| dc.subject | Mo-Fe bimetallic catalysts | en |
| dc.subject | Porous material catalysis | en |
| dc.subject | Zeolite modification | en |
| dc.subject | Selective extraction of metals | en |
| dc.subject | External site passivation | en |
| dc.subject | Carbon nanotubes | en |
| dc.subject | Structure-activity relationships | en |
| dc.title | Designing Metal/Zeolite Catalysts for Methane Dehydroaromatization: Decoupling External Site Effects, Bimetallic Interactions, and Deactivation Pathways | en |
| dc.type | Dissertation | en |
| thesis.degree.discipline | Chemical Engineering | en |
| thesis.degree.grantor | Virginia Polytechnic Institute and State University | en |
| thesis.degree.level | doctoral | en |
| thesis.degree.name | Doctor of Philosophy | en |
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