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Dive into the research topics where Jacob W. McMurray is active.

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Featured researches published by Jacob W. McMurray.


ACS Nano | 2017

Cation–Eutectic Transition via Sublattice Melting in CuInP2S6/In4/3P2S6 van der Waals Layered Crystals

Michael A. Susner; Marius Chyasnavichyus; Alexander A. Puretzky; Qian He; B.S. Conner; Yang Ren; David A. Cullen; Panchapakesan Ganesh; Dongwon Shin; Hakan Demir; Jacob W. McMurray; Albina Y. Borisevich; Petro Maksymovych; Michael A. McGuire

Single crystals of the van der Waals layered ferrielectric material CuInP2S6 spontaneously phase separate when synthesized with Cu deficiency. Here we identify a route to form and tune intralayer heterostructures between the corresponding ferrielectric (CuInP2S6) and paraelectric (In4/3P2S6) phases through control of chemical phase separation. We conclusively demonstrate that Cu-deficient Cu1-xIn1+x/3P2S6 forms a single phase at high temperature. We also identify the mechanism by which the phase separation proceeds upon cooling. Above 500 K both Cu+ and In3+ become mobile, while P2S64- anions maintain their structure. We therefore propose that this transition can be understood as eutectic melting on the cation sublattice. Such a model suggests that the transition temperature for the melting process is relatively low because it requires only a partial reorganization of the crystal lattice. As a result, varying the cooling rate through the phase transition controls the lateral extent of chemical domains over several decades in size. At the fastest cooling rate, the dimensional confinement of the ferrielectric CuInP2S6 phase to nanoscale dimensions suppresses ferrielectric ordering due to the intrinsic ferroelectric size effect. Intralayer heterostructures can be formed, destroyed, and re-formed by thermal cycling, thus enabling the possibility of finely tuned ferroic structures that can potentially be optimized for specific device architectures.


Journal of Nuclear Materials | 2014

Thermodynamic reassessment of U–Gd–O system

Jacob W. McMurray; Dongwon Shin; Benjamin W Slone; Theodore M. Besmann


Journal of Nuclear Materials | 2013

Thermochemical modeling of the U1−yGdyO2±x phase

Jacob W. McMurray; Dongwon Shin; Benjamin W Slone; Theodore M. Besmann


Journal of the American Ceramic Society | 2016

Thermodynamic assessment of the Pr-O system

Jacob W. McMurray


Journal of the American Ceramic Society | 2016

A combined experimental and computational thermodynamic investigation of the U-Th-O system

Jacob W. McMurray; Stewart Voit; Theodore M. Besmann


Journal of Nuclear Materials | 2016

Measurement of the oxygen partial pressure and thermodynamic modeling of the U–Nd–O system

Seung Min Lee; Travis W. Knight; Jacob W. McMurray; Theodore M. Besmann


Annals of Nuclear Energy | 2017

Determining the minimum required uranium carbide content for HTGR UCO fuel kernels

Jacob W. McMurray; Terrence B. Lindemer; Nicholas R. Brown; Tyler J. Reif; Robert Noel Morris; John D. Hunn


Archive | 2018

Thermodynamic Modeling of Nuclear Fuel Materials

Jacob W. McMurray; Theodore M. Besmann


Journal of the American Ceramic Society | 2018

Production of near-full density uranium nitride microspheres with a hot isostatic press

Jacob W. McMurray; Jim Kiggans; Grant W. Helmreich; Kurt A. Terrani


Archive | 2017

Uranium nitride-silicide advanced nuclear fuel: Higher efficiency and greater safety

Theodore M. Besmann; Tashiema L. Wilson; Emily E. Moore; Mallikharjuna Bogala; Mark J. Noordhoek; Elizabeth Sooby Wood; Andrew T. Nelson; Jacob W. McMurray; S.C. Middleburgh; Peng Xu

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Theodore M. Besmann

University of South Carolina

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Dongwon Shin

Oak Ridge National Laboratory

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Benjamin W Slone

Oak Ridge National Laboratory

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Albina Y. Borisevich

Oak Ridge National Laboratory

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Alexander A. Puretzky

Oak Ridge National Laboratory

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Andrew T. Nelson

Los Alamos National Laboratory

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B.S. Conner

Oak Ridge National Laboratory

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David A. Cullen

Oak Ridge National Laboratory

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Elizabeth Sooby Wood

Los Alamos National Laboratory

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Emily E. Moore

University of South Carolina

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