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Electrocatalytic nitric oxide reduction reaction (NORR) is a promising alternative to achieve ecofriendly ammonia synthesis and maintain the global N balance. In this study, the catalytic performance of Molybdenum Diboride (MoB) and Tungsten Diboride (WB) monolayers for NORR was investigated using density functional theory (DFT) calculations. The catalytic activity and selectivity of B-surfaces and transition metal (TM)-surfaces were comprehensively investigated. The thermodynamic stability of MoB and WB monolayers was confirmed through cohesive energy calculations, ab initio molecular dynamics simulations (AIMD), and phonon spectra analysis. Additionally, the electrochemical stability was evaluated using dissolution potential (U). During NO reduction to NH, the directional charge transfer from the TM surface to the B surface improves the problem of insufficient p electrons in the B atom itself and optimizes the adsorption energy of NO. Compared to other MBenes, the B-surfaces of MoB and WB exhibited significantly enhanced catalytic performance on their B-surfaces, with lower limiting potentials of -0.16 V and - 0.08 V, respectively. Subsequently, we further elaborated the mechanism of NO molecule activation through the "donation/anti-donation" mechanism of σ → px/py and pz → π*. Furthermore, the effects of biaxial tensile strain (-2 % to 2 %) on the electronic structures, activity trends, adsorption behaviors, and underlying mechanisms of these monolayers were systematically explored. The findings underscore MoB and WB monolayers as promising candidates for efficient and selective NORR catalysts, providing a viable pathway for sustainable NH synthesis.
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http://dx.doi.org/10.1016/j.jcis.2025.138597 | DOI Listing |
J Colloid Interface Sci
December 2025
School of Materials and Chemical Engineering, Pingxiang University, Pingxiang 337055, China. Electronic address:
Electrocatalytic nitric oxide reduction reaction (NORR) is a promising alternative to achieve ecofriendly ammonia synthesis and maintain the global N balance. In this study, the catalytic performance of Molybdenum Diboride (MoB) and Tungsten Diboride (WB) monolayers for NORR was investigated using density functional theory (DFT) calculations. The catalytic activity and selectivity of B-surfaces and transition metal (TM)-surfaces were comprehensively investigated.
View Article and Find Full Text PDFACS Appl Bio Mater
August 2025
Department of Materials and Materials Processing Technologies Vocational School of Technical Sciences, Istanbul University-Cerrahpaşa, istanbul 34500, Türkiye.
Herein, nanocrystalline MoB powder synthesized via a single-step molten salt reaction of precursor materials MoCl and amorphous boron powder in the presence of KCl and NaCl by varying the boron amount was applied for the first time in vitro cytotoxicity and antibacterial studies. The crystalline structure, morphology, and surface characteristics were investigated in detail by powder X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS), scanning electron microscopy (SEM), high-resolution transmission electron microscopy (HRTEM), and Brunauer-Emmett-Teller (BET) analysis. The results indicated that the amount of boron played a crucial role in the nanostructure of MoB.
View Article and Find Full Text PDFSci Rep
April 2025
Institute of Materials Science and Engineering, National Taipei University of Technology, No.1, Sec. 3, Zhong-Xiao E. Rd, Taipei, 106344, Taiwan.
Titanium diboride (TiB) and molybdenum diboride (MoB) are known for their excellent mechanical properties such as high hardness, wear resistance and thermal stability, of great interest in advanced engineering applications. This study systematically explored the structural, electronic, thermal, and mechanical properties of Ti-Mo-B solid solutions via first-principles density functional theory (DFT). Mo is substituted into the TiB lattice to investigate its effect on five alloy compositions of key material properties.
View Article and Find Full Text PDFSmall
August 2024
School of Marine Science and Engineering, State Key Laboratory of Marine Resource Utilization in South China Sea, Hainan University, Haikou, 570228, China.
With the development of electric vehicles, exploiting anode materials with high capacity and fast charging capability is an urgent requirement for lithium-ion batteries (LIBs). Borophene, with the merits of high capacity, high electronic conductivity and fast diffusion kinetics, holds great potential as anode for LIBs. However, it is difficult to fabricate for the intrinsic electron-deficiency of boron atom.
View Article and Find Full Text PDFPhys Chem Chem Phys
July 2023
Department of Chemical Sciences, Indian Institute of Science Education and Research Kolkata, Mohanpur-741 246, India.
The materials community is interested in discovering new two-dimensional (2D) crystals because of the potential for fascinating features. In this work, by employing a systematic first-principles DFT analysis and MD simulations, we investigated the potential applications of monolayer Mo borides containing flat and buckled boride rings named 6/ and 3̄ MoB as anode materials of lithium-ion batteries. Our preliminary investigations show that the MoB monolayers possess significant structural, thermodynamic, mechanical, and dynamical stability.
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