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DOE OSTI · 3375727

Vapor-phase pillarization of MXenes for engineering hierarchical interlayer porosity

Abstract

MXenes, a family of two-dimensional (2D) multilamellar materials, possess excellent thermal and electronic properties for a range of applications. Their use in heterogeneous catalysis, however, is limited by the low surface area resulting from stacked layers. Pillarization with inorganic oxides can create more open, mesoporous MXene structures, improving accessibility for guest species to diffuse, reside or react in the space between 2D layers. A previous liquid-phase pillarization method, however, involves excessive use of solvent-based precursors and multiple processing steps. Here, we report a vapor-phase pillarization (VPP) strategy to introduce pillars, exemplified by silica pillars, with high pillar precursor usage efficiency and a simplified processing workflow. The resulting silica-pillared mesoporous MXene exhibits significantly increased surface area and porosity. These textural properties can be easily tuned by the VPP synthesis conditions. When applied as a ruthenium (Ru) catalyst support for the hydrogenolysis of low-density polyethylene (LDPE), the silica-pillared MXene enabled high Ru dispersion and catalytic activity. This study highlights the potential of the VPP method for engineering mesoporous, 2D MXene materials and demonstrates the effectiveness of mesoporous MXene as a catalyst support in overcoming mass transport and active-site accessibility challenges in heterogeneous catalysis involving bulky substances, such as plastics upcycling.

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BibTeXRIS

Luo, Song [University of Delaware, Newark, DE (United States)] (ORCID:000000018754346X), Kamali, Ali [University of Delaware, Newark, DE (United States)], Little, Joshua M. [University of Maryland, College Park, MD (United States)], Warty, Akash [University of Delaware, Newark, DE (United States)], Keum, Jong K. [Oak Ridge National Laboratory (ORNL), Oak Ridge, TN (United States)] (ORCID:0000000255291373), Chen, Po-Yen [University of Maryland, College Park, MD (United States)] (ORCID:0000000303104748), Kwak, Yeonsu [University of Delaware, Newark, DE (United States)] (ORCID:0000000244370025), Kim, Hyunjik K. [University of Delaware, Newark, DE (United States)] (ORCID:0009000327043676), Vlachos, Dionisios G. [University of Delaware, Newark, DE (United States)] (ORCID:0000000267958403), Zhang, Ke [Aramco Research Center – Houston, TX (United States)] (ORCID:0000000289251847), Yang, John [Aramco Research Center – Houston, TX (United States)], Liu, Dongxia [University of Delaware, Newark, DE (United States)]. 2026-04-29. Vapor-phase pillarization of MXenes for engineering hierarchical interlayer porosity. https://doi.org/10.1039/d5ta09345g

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Tuning Anisotropic Optical Properties of Inorganic and Hybrid Organic–Inorganic MXenes via Topochemical Surface Modification

Surface groups are central to the properties of MXenes, yet their role in optical anisotropy remains largely unexplored. Here, we use a topochemical route to synthesize single crystals of stacked Ti 3 C 2 Cl 2 and hybrid organic–inorganic MXenes (h-MXenes) with lateral sizes of 38–75 μm, rotational registry, and tunable interlayer spacing. Solid-state NMR spectroscopy shows that topochemical substitution generates mixed amido, imido, and hydride surface motifs, which modify the electronic structure of the Ti 3 C 2 inorganic core. Imaging spectroscopic ellipsometry with micron-scale spatial resolution enables reconstruction of the complex dielectric tensor of individual multilayer crystals. Ti 3 C 2 Cl 2 exhibits a type-II hyperbolicity above 930 nm, whereas h-MXenes do not display hyperbolicity within the measured 300–1700 nm window, instead showing reduced in-plane conductivity, suppressed out-of-plane light absorption, and a chain-length-dependent blue shift of a near-infrared absorption feature. These results demonstrate topochemical surface modification as a direct handle for engineering MXenes as surface-programmable optical media.

Hybrid materials