Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Nico de Koker is active.

Publication


Featured researches published by Nico de Koker.


Journal of Physics: Condensed Matter | 2012

Melting of cubic boron nitride at extreme pressures.

Nico de Koker

Due to its large pressure range of stability and inert nature, cubic boron nitride has been proposed as a potential pressure standard for high pressure experiments. It is extremely refractive upon compression, although its melting temperature is not known beyond 10 GPa. We apply first-principles molecular dynamics to evaluate the thermodynamics of zincblende structured (cubic) and liquid boron nitride at extreme temperatures and pressures, and compute the melting curve up to 1 TPa by integration of the Clapeyron equation. The resulting equations of state reveal that liquid boron nitride becomes denser than the solid phase at pressures of around 0.5 TPa. This is expressed as a turnover in the melting curve, which reaches a maximum at 510 GPa and 6550 ± 700 K. The origin of this density crossover is explained in terms of the underlying liquid structure, which diverges from that of the zincblende structured solid as the phases are compressed.Due to its large pressure range of stability and inert nature, cubic boron nitride has been proposed as a potential pressure standard for high pressure experiments. It is extremely refractive upon compression, although its melting temperature is not known beyond 10 GPa. We apply first-principles molecular dynamics to evaluate the thermodynamics of zincblende structured (cubic) and liquid boron nitride at extreme temperatures and pressures, and compute the melting curve up to 1 TPa by integration of the Clapeyron equation. The resulting equations of state reveal that liquid boron nitride becomes denser than the solid phase at pressures of around 0.5 TPa. This is expressed as a turnover in the melting curve, which reaches a maximum at 510 GPa and 6550 ± 700 K. The origin of this density crossover is explained in terms of the underlying liquid structure, which diverges from that of the zincblende structured solid as the phases are compressed.


Physical Review Letters | 2009

Thermal conductivity of MgO periclase from equilibrium first principles molecular dynamics.

Nico de Koker


Earth and Planetary Science Letters | 2010

Thermal conductivity of MgO periclase at high pressure: Implications for the D″ region

Nico de Koker


Earth and Planetary Science Letters | 2013

Thermodynamics of the MgO–SiO2 liquid system in Earth's lowermost mantle from first principles

Nico de Koker; Bijaya B. Karki; Lars Stixrude


Geochimica et Cosmochimica Acta | 2011

First principles molecular dynamics simulations of diopside (CaMgSi2O6) liquid to high pressure

Ni Sun; Lars Stixrude; Nico de Koker; Bijaya B. Karki


Geochimica et Cosmochimica Acta | 2010

Structure, thermodynamics, and diffusion in CaAl2Si2O8 liquid from first-principles molecular dynamics

Nico de Koker


Reviews in Mineralogy & Geochemistry | 2010

Theoretical Computation of Diffusion in Minerals and Melts

Nico de Koker; Lars Stixrude


Journal of Geophysical Research | 2011

Thermodynamics, diffusion and structure of NaAlSi2O6 liquid at mantle conditions: A first‐principles molecular dynamics investigation

Huaiwei Ni; Nico de Koker


Bulletin of the American Physical Society | 2008

First-Principles Molecular Dynamics of Melts in the MgO-SiO

Bijaya B. Karki; Nico de Koker; D. Bhattarai; Lars Stixrude


Archive | 2007

_{2}

Nico de Koker; Lars Stixrude

Collaboration


Dive into the Nico de Koker's collaboration.

Top Co-Authors

Avatar

Lars Stixrude

University College London

View shared research outputs
Top Co-Authors

Avatar

Bijaya B. Karki

Louisiana State University

View shared research outputs
Top Co-Authors

Avatar

D. Bhattarai

Louisiana State University

View shared research outputs
Top Co-Authors

Avatar

Ni Sun

University of Michigan

View shared research outputs
Top Co-Authors

Avatar

Huaiwei Ni

University of Science and Technology of China

View shared research outputs
Researchain Logo
Decentralizing Knowledge