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Featured researches published by Biprodas Dutta.


Review of Scientific Instruments | 2010

High temperature thermal conductivity of platinum microwire by 3ω method.

Rudra P. Bhatta; Sezhian Annamalai; Robert K. Mohr; Marek Brandys; Ian L. Pegg; Biprodas Dutta

The 3ω method for thermal conductivity measurement has emerged as an effective technique applicable to micro/nanowires and thin films. This paper describes the adaptation of the method to temperatures as high as 725 K enabling reliable thermal conductivity measurements on such samples for which previously published methods have been found inadequate. In the technique, a sample wire is heated by applying a sinusoidal current at an angular frequency ω, which causes a temperature and resistance variation at an angular frequency, 2ω, leading to a voltage signal at 3ω. The sample is connected as a four-terminal resistor to a digital lock-in amplifier, which is used to detect the in-phase and out-of-phase 3ω voltages resulting from the applied 1ω current. The data are fitted by varying the values of the thermal resistance and diffusion time, both of which are functions of thermal conductivity. Measurements are made at steady state temperatures between 300 and 725 K. Meaningful measurements at elevated temperatures require that thermal losses be understood and minimized. Conduction losses are prevented by suspending the sample above the mounting substrate. Convection losses are minimized by maintaining a vacuum of ~10(-5) torr inside the sample chamber. To minimize radiation losses, an appropriately sized sample is shrouded with a double heat-shield, with the inner shield temperature near that of the sample. Using the 3ω method, the thermal conductivity of platinum was determined to vary between 71.8 and 80.7 Wm(-1) K(-1) over the temperature range of 300 to 725 K, in agreement with published values measured for bulk samples.


Archive | 2009

Extruded Porous Substrate and Products Using The Same

Bilal Zuberi; Sunilkumar C. Pillai; Robert G. Lachenauer; Biprodas Dutta; William M. Carty


Journal of Non-crystalline Solids | 2006

Effect of mixed transition-metal ions in glasses. Part III: The P2O5–V2O5–MnO system

Biprodas Dutta; Niveen A. Fahmy; Ian L. Pegg


Journal of Non-crystalline Solids | 2005

Effect of mixed transition-metal ions in glasses. I. The P2O5-V2O5-Fe2O3 system

Biprodas Dutta; Niveen A. Fahmy; Ian L. Pegg


Journal of Non-crystalline Solids | 2005

Effect of mixing transition ions in glasses. II. The P2O5-Fe2O3-MnO system

Biprodas Dutta; Niveen A. Fahmy; Ian L. Pegg


Archive | 2005

Methods of drawing high density nanowire arrays in a glassy matrix

Biprodas Dutta; Ian L. Pegg; Robert K. Mohr; Jugdersuren Battogtokh


Journal of Non-crystalline Solids | 2012

Mixed transition-ion effect in the glass system: Fe2O3-MnO-TeO2

Sezhian Annamalai; Rudra P. Bhatta; Ian L. Pegg; Biprodas Dutta


Journal of Electronic Materials | 2007

Thermoelectric Properties of NaCo2 − xFexOy

Biprodas Dutta; Jugdersuren Battogtokh; David Mckewon; Igor Vidensky; Neilanjan Dutta; Ian L. Pegg


Journal of Materials Science | 2008

Effect of cation stoichiometry on the transport properties of calcium ruthenium oxide ceramics

Sezhian Annamalai; Igor Vidensky; Ian L. Pegg; Biprodas Dutta


Archive | 2007

Method of drawing a glass clad multi core lead telluride wire

Biprodas Dutta; Ian L. Pegg; Robert K. Mohr; Jugdersuren Battogtokh

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Ian L. Pegg

The Catholic University of America

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Rudra P. Bhatta

The Catholic University of America

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Sezhian Annamalai

The Catholic University of America

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Jugdersuren Battogtokh

The Catholic University of America

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Niveen A. Fahmy

The Catholic University of America

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Robert K. Mohr

The Catholic University of America

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Andreza Eufrasio

The Catholic University of America

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Igor Vidensky

The Catholic University of America

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Marek Brandys

The Catholic University of America

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Mark Henderson

The Catholic University of America

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