Literature DB >> 27118421

Adsorption and dissociation of H2O on the (001) surface of uranium mononitride: energetics and mechanism from first-principles investigation.

Tao Bo1, Jian-Hui Lan, Yu-Juan Zhang, Yao-Lin Zhao, Chao-Hui He, Zhi-Fang Chai, Wei-Qun Shi.   

Abstract

The interfacial interaction of uranium mononitride (UN) with water from the environment unavoidably leads to corrosion of nuclear fuels, which affects a lot of processes in the nuclear fuel cycle. In this work, the microscopic adsorption behaviors of water on the UN(001) surface as well as water dissociation and accompanying H2 formation mechanisms have been investigated on the basis of DFT+U calculations and ab initio atomistic thermodynamics. For adsorption of one H2O monomer, the predicted adsorption energies are -0.88, -2.07, and -2.07 eV for the most stable molecular, partially dissociative, and completely dissociative adsorption, respectively. According to our calculations, a water molecule dissociates into OH and H species via three pathways with small energy barriers of 0.78, 0.72, and 0.85 eV, respectively. With the aid of the neighboring H atom, H2 formation through the reaction of H* + OH* can easily occur via two pathways with energy barriers of 0.61 and 0.36 eV, respectively. The molecular adsorption of water shows a slight coverage dependence on the surface while this dependence becomes obvious for partially dissociative adsorption as the water coverage increases from 1/4 to 1 ML. In addition, based on the "ab initio atomistic thermodynamic" simulations, increasing H2O partial pressure will enhance the stability of the adsorbed system and water coverage, while increasing temperature will decrease the H2O coverage. We found that the UN(001) surface reacts easily with H2O at room temperature, leading to dissolution and corrosion of the UN fuel materials.

Entities:  

Year:  2016        PMID: 27118421     DOI: 10.1039/c6cp01175f

Source DB:  PubMed          Journal:  Phys Chem Chem Phys        ISSN: 1463-9076            Impact factor:   3.676


  2 in total

1.  Theoretical Study of an almost Barrier-Free Water Dissociation on a Platinum (111) Surface Alloyed with Ruthenium and Molybdenum.

Authors:  Wahyu Tri Cahyanto; Siti Zulaehah; Wahyu Widanarto; Farzand Abdullatif; Mukhtar Effendi; Hideaki Kasai
Journal:  ACS Omega       Date:  2021-04-16

2.  DFT + U Study of the Adsorption and Dissociation of Water on Clean, Defective, and Oxygen-Covered U3Si2{001}, {110}, and {111} Surfaces.

Authors:  Ericmoore Jossou; Linu Malakkal; Nelson Y Dzade; Antoine Claisse; Barbara Szpunar; Jerzy Szpunar
Journal:  J Phys Chem C Nanomater Interfaces       Date:  2019-07-11       Impact factor: 4.126

  2 in total

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