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Dive into the research topics where Sergiu Arapan is active.

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Featured researches published by Sergiu Arapan.


Proceedings of the National Academy of Sciences of the United States of America | 2010

Dynamical stability of body center cubic iron at the Earth’s core conditions

Wei Luo; Börje Johansson; Olle Eriksson; Sergiu Arapan; Petros Souvatzis; M. I. Katsnelson; Rajeev Ahuja

Here, using self-consistent ab initio lattice dynamical calculations that go beyond the quasiharmonic approximation, we show that the high-pressure high-temperature bcc-Fe phase is dynamically stable. In this treatment the temperature-dependent phonon spectra are derived by exciting all the lattice vibrations, in which the phonon–phonon interactions are considered. The high-pressure and high-temperature bcc-Fe phase shows standard bcc-type phonon dispersion curves except for the transverse branch, which is overdamped along the high symmetry direction Γ-N, at temperatures below 4,500 K. When lowering the temperature down to a critical value TC, the lattice instability of the bcc structure is reached. The pressure dependence of this critical temperature is studied at conditions relevant for the Earth’s core.


Journal of Chemical Information and Modeling | 2012

Information-Theoretic Approach for the Discovery of Design Rules for Crystal Chemistry

Chang Sun Kong; Wei Luo; Sergiu Arapan; P. Villars; Shuichi Iwata; Rajeev Ahuja; Krishna Rajan

In this work, it is shown that for the first time that, using information-entropy-based methods, one can quantitatively explore the relative impact of a wide multidimensional array of electronic and chemical bonding parameters on the structural stability of intermetallic compounds. Using an inorganic AB2 compound database as a template data platform, the evolution of design rules for crystal chemistry based on an information-theoretic partitioning classifier for a high-dimensional manifold of crystal chemistry descriptors is monitored. An application of this data-mining approach to establish chemical and structural design rules for crystal chemistry is demonstrated by showing that, when coupled with first-principles calculations, statistical inference methods can serve as a tool for significantly accelerating the prediction of unknown crystal structures.


Proceedings of the National Academy of Sciences of the United States of America | 2008

Prediction of incommensurate crystal structure in Ca at high pressure

Sergiu Arapan; Ho-kwang Mao; Rajeev Ahuja

Ca shows an interesting high-pressure phase transformation sequence, but, despite similar physical properties at high pressure and affinity in the electronic structure with its neighbors in the periodic table, no complex phase has been identified for Ca so far. We predict an incommensurate high-pressure phase of Ca from first principle calculations and describe a procedure of estimating incommensurate structure parameters by means of electronic structure calculations for periodic crystals. Thus, by using the ab initio technique for periodic structures, one can get not only reliable information about the electronic structure and structural parameters of an incommensurate phase, but also identify and predict such phases in new elements.


Journal of Physics: Condensed Matter | 2011

An ab initio molecular dynamics study of iron phases at high pressure and temperature

Anatoly B. Belonoshko; Sergiu Arapan; Anders Rosengren

The crystal structure of iron, the major component of the Earths inner core (IC), is unknown for the IC high pressure (P; 3.3-3.6 Mbar) and temperature (T; 5000-7000 K). There is mounting evidence that the hexagonal close-packed (hcp) phase of iron, stable at the high P of the IC and a low T, might be unstable under the IC conditions due to the impact of high T and impurities. Experiments at the IC P and T are difficult and do not provide a conclusive answer as regards the iron stability at the pressure of the IC and temperatures close to the iron melting curve. Recent theory provides contradictory results regarding the nature of the stable Fe phase. We investigated the possibility of body-centered cubic (bcc) phase stabilization at the P and T in the vicinity of the Fe melting curve by using ab initio molecular dynamics. Thermodynamic calculations, relying on the model of uncorrelated harmonic oscillators, provide nearly identical free energies within the error bars of our calculations. However, direct simulation of iron crystallization demonstrates that liquid iron freezes in the bcc structure at the P of the IC and T = 6000 K. All attempts to grow the hcp phase from the liquid failed. The mechanism of bcc stabilization is explained. This resolves most of the earlier confusion.


EPL | 2011

Temperature-driven α-to-β phase transformation in Ti, Zr and Hf from first-principles theory combined with lattice dynamics

Petros Souvatzis; Sergiu Arapan; Olle Eriksson; M. I. Katsnelson

Lattice dynamical methods used to predict phase transformations in crystals typically deal with harmonic phonon spectra and are therefore not applicable in important situations where one of the competing crystal structures is unstable in the harmonic approximation, such as the bcc structure involved in the hcp-to-bcc martensitic phase transformation in Ti, Zr and Hf. Here we present an expression for the free energy that does not suffer from such shortcomings, and we show by self-consistent ab initio lattice dynamical calculations (SCAILD), that the critical temperature for the hcp-to-bcc phase transformation in Ti, Zr and Hf, can be effectively calculated from the free-energy difference between the two phases. This opens up the possibility to study quantitatively, from first-principles theory, temperature-induced phase transitions.


Journal of Physics: Condensed Matter | 2008

Electronic structure of Cu3N films studied by soft x-ray spectroscopy

Anders Modin; Kristina O. Kvashnina; Sergei M. Butorin; Lars Werme; Joseph Nordgren; Sergiu Arapan; Rajeev Ahuja; Anna Fallberg; Mikael Ottosson

Soft x-ray emission spectroscopy was used to characterize the electronic structure of seven copper nitride films, one synthesized with atomic layer deposition (ALD) and six grown with chemical vapor deposition (CVD) at different preparation temperatures. Interpretation of the x-ray emission spectra was supported by calculations of the electronic structure for bulk pure Cu(3)N and Cu(3)N with: an excess of Cu atoms, oxygen or carbon impurities, and N vacancies. The calculations are shown to describe the experimental spectra quite well. Analysis of the x-ray spectra suggests that films grown in copper rich environments and above a cut-off temperature of approximately 360 °C have a growing fraction of copper enriched areas, while films prepared below this temperature do not have these areas with excess copper.


Physical Review B | 2010

High-pressure phase transformations in carbonates

Sergiu Arapan; Rajeev Ahuja


Physical Review Letters | 2007

Formation of sp3 hybridized bonds and stability of CaCO3 at very high pressure.

Sergiu Arapan; Jailton Souza de Almeida; Rajeev Ahuja


Physical Review B | 2015

Volume-dependent electron localization in ceria

Sergiu Arapan; Sergei I. Simak; Natalia V. Skorodumova


Physical Review Letters | 2009

Determination of the Structural Parameters of an Incommensurate Phase from First Principles : The Case of Sc-II

Sergiu Arapan; Natalia V. Skorodumova; Rajeev Ahuja

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Anatoly B. Belonoshko

Royal Institute of Technology

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Anders Rosengren

Royal Institute of Technology

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Börje Johansson

Royal Institute of Technology

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