Searcharxiv⌕ Search

arXiv subjects

Asif I. Bhatti

Publications and source records attributed to Asif I. Bhatti.

2 recordsLinked to original sources

Crystallographic control of hydrogen ingress in bcc-Iron: Insights from ab initio simulations

Hydrogen uptake into body-centered cubic (bcc) iron as a root cause for subsequent hydrogen embrittlement, is initiated at the surface. In this paper, we quantify how readily H diffuses from the surface into the bulk. We consider a set of low-index, vicinal and general Fe surfaces and treat H-permeation as a two-step process. First, density-functional calculations determine the adsorption energy of an isolated H atom at every crystallographically distinct surface site. Second, for each adsorption site we map the minimum-energy pathway that carries the atom beneath the surface and into the lattice. Across all ten orientations studied, a clear trend emerges: sites that bind hydrogen most weakly (highest adsorption energy) are the starting point of the lowest-barrier diffusion channels into the metal interior. Thus, the least-favorable adsorption pockets act as gateways for efficient subsurface penetration. These insights provide a practical design rule: suppressing or minimizing exposure of such high-energy adsorption motifs - through appropriate surface texturing or orientation control - should make bcc-iron components less susceptible to hydrogen uptake and the associated embrittlement.

cond-mat.mtrl-sci↗

Effect of Ti addition on the structural, thermodynamic, and elastic properties of Ti$_{x}$(HfNbTaZr)$_{(1-x)/4}$ alloys

The structure and thermodynamic properties of Ti$_x$(HfNbTaZr)$_{(1-x)/4}$ from Refractory High Entropy multicomponent Alloys to pure titanium are investigated employing comprehensive MCSQS realizations of the disordered atomic structure and DFT calculations. We showed that to model the random structure in a limited supercell, it is necessary to probe a large space of random configurations with respect to the nearest neighbor's shells. Mimicking the randomness with the many-body terms does not lead to significant improvements in the mixing energy, but modeling the random structure with the few nearest neighbor pairs leads to improvements in the mixing energy. Furthermore, we demonstrated the existence of weak to medium SRO for the two equimolar compositions. Chemical ordering is investigated by associating a large number of MCSQS realizations to DFT energy calculations, and SRO results are rationalized in terms of the crystallographic structure of the pairs of elements and binary phase diagrams. When Ti is added to Ti$_x$(HfNbTaZr)$_{(1-x)/4}$ alloys, the mixing energy remains slightly positive for all $x$. For $x$ > 0.4, a phase transition in favor of an hcp structure is observed in agreement with the predictions of the Bo-Md diagram. At $x$ = 0.5, a dual phase is predicted. Ti content in this class of alloys could be a practical way to select phase structure and tailor the elastic properties to specific applications.

cond-mat.mtrl-sci↗