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Dive into the research topics where Eric B. Isaacs is active.

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Featured researches published by Eric B. Isaacs.


Physical Review B | 2017

Compositional phase stability of strongly correlated electron materials within DFT+ U

Eric B. Isaacs; Chris A. Marianetti

Predicting the compositional phase stability of strongly correlated electron materials is an outstanding challenge in condensed matter physics. In this work, we employ the DFT+U formalism to address the effects of local correlations due to transition metal d electrons on compositional phase stability in the prototype phase stable and separating materials LixCoO2 and olivine LixFePO4, respectively. We exploit a new spectral decomposition of the DFT+U total energy, revealing the distinct roles of the filling and ordering of the d orbital correlated subspace. The on-site interaction U drives both of these very different materials systems towards phase separation, stemming from enhanced ordering of the d orbital occupancies in the x=0 and x=1 species, whereas changes in the overall filling of the d shell contribute negligibly. We show that DFT+U formation energies are qualitatively consistent with experiments for phase stable LixCoO2, phase separating LixFePO4, and phase stable LixCoPO4. However, we find that charge ordering plays a critical role in the energetics at intermediate x, strongly dampening the tendency for the Hubbard U to drive phase separation. Most relevantly, the phase stability of Li1/2CoO2 within DFT+U is qualitatively incorrect without allowing charge ordering, which is problematic given that neither charge ordering nor the band gap that it induces are observed in experiment. We demonstrate that charge ordering arises from the correlated subspace interaction energy as opposed to the double counting. Additionally, we predict the Li order-disorder transition temperature for Li1/2CoO2, demonstrating that the unphysical charge ordering within DFT+U renders the method problematic, often producing unrealistically large results. Our findings motivate the need for other advanced techniques, such as DFT+DMFT, for total energies in strongly correlated materials.


Journal of Physical Chemistry Letters | 2011

Relating Trends in First-Principles Electronic Structure and Open-Circuit Voltage in Organic Photovoltaics

Eric B. Isaacs; Sahar Sharifzadeh; Biwu Ma; Jeffrey B. Neaton


Physical Review B | 2014

Ideal strength and phonon instability of strained monolayer materials

Eric B. Isaacs; Chris A. Marianetti


Chemistry of Materials | 2018

Inverse Band Structure Design via Materials Database Screening: Application to Square Planar Thermoelectrics

Eric B. Isaacs; C. Wolverton


Journal of Physical Chemistry C | 2015

Adsorption Characteristics and Size/Shape Dependence of Pt Clusters on the CdS Surface

Shangmin Xiong; Eric B. Isaacs; Yan Li


Physical Review Materials | 2018

Performance of the strongly constrained and appropriately normed density functional for solid-state materials

Eric B. Isaacs; C. Wolverton


arXiv: Materials Science | 2018

Remarkable thermoelectric performance in BaPdS

Eric B. Isaacs; C. Wolverton


Archive | 2018

_2

Eric B. Isaacs; C. Wolverton


Bulletin of the American Physical Society | 2018

via pudding-mold band structure and ultralow lattice thermal conductivity.

Eric B. Isaacs; C. Wolverton


Archive | 2016

A materials informatics approach to the identification of one-band correlated materials analogous to the cuprates

Eric B. Isaacs

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C. Wolverton

Northwestern University

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Biwu Ma

Florida State University

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John A. Schlueter

Argonne National Laboratory

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Jonathan Logan

Argonne National Laboratory

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Oleg Shpyrko

University of California

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