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K. T. Jacob

Researcher at Indian Institute of Science

Publications -  366
Citations -  5384

K. T. Jacob is an academic researcher from Indian Institute of Science. The author has contributed to research in topics: Gibbs free energy & Phase diagram. The author has an hindex of 33, co-authored 364 publications receiving 5026 citations. Previous affiliations of K. T. Jacob include Defence Metallurgical Research Laboratory & University of Toronto.

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Journal Article

System Pr-Pd-O : Phase diagram and thermodynamic properties of ternary oxides using solid-state cells with special features

TL;DR: An isothermal section of the phase diagram for the system Pr-Pd-O at 1223 K has been established by equilibration of samples representing 13 different compositions, and phase identification after quenching by optical and scanning electron microscopy (SEM), X-ray diffraction (XRD), and energy dispersive analysis of X-rays (EDX) as discussed by the authors.
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The standard molar Gibbs energy of formation of YbPt3 and LuPt3 intermetallics

TL;DR: In this paper, the standard molar Gibbs energies of formation of YbPt3 and LuPt 3 intermetallic compounds have been measured in the temperature range 880 K to 1100 K using the solid-state cells.

Deoxidation of liquid copper: effect of phosphorus on oxygen activity

TL;DR: In this paper, an analysis of the deoxidation of liquid copper is made by use of an Ellingham-type diagram, which incorporates data now available on interactions between copper and deoxidant in solution.
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Phase relations in the system Cu-La-O and thermodynamic properties of CuLaO2 and CuLa2O4

TL;DR: In this article, phase relations in the system Cu-La-O at 1200 K have been determined by equilibrating samples of different average composition at 1250 K, and phase analysis of quenched samples using optical microscopy, XRD, SEM and EDX.
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Decomposition temperatures of Cu2Ln2O5 (Ln = Tb, Dy, Ho, Er, Tm, Yb, and Lu) compounds

TL;DR: In this paper, the equilibrium decomposition temperatures of the compounds were measured using a combined DTA-TGA apparatus under a flowing $Ar + O_2$ gas mixture, in which the partial pressure of oxygen was controlled at 5.0*10^3 Pa.