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Dive into the research topics where Sarat Munjal is active.

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Featured researches published by Sarat Munjal.


Molecular Systems Design & Engineering | 2018

Accurate density functional theory (DFT) protocol for screening and designing chain transfer and branching agents for LDPE systems

Ivan A. Konstantinov; Sean W. Ewart; Hayley Brown; Christopher Eddy; Jonathan Mendenhall; Sarat Munjal

In this work, a density functional theory (DFT) methodology was developed and validated against experimental data for relative hydrogen abstraction (Cs) and monomer reactivity ratio (r1) parameters associated with free radical polymerization. For hydrogen abstraction, we considered ethane, cyclohexane, 2-butanone, propylene, isobutene, isobutane and propanal while methyl methacrylate, vinyl acetate, 1-butene, propylene and isobutene were the molecules of choice for benchmarking r1. It was shown that the M06-2X/6-311+G(3df,2p)//B3LYP/6-31+G(d,p) level of theory along with the counterpoise correction for the basis set superposition error (BSSE) produced estimated values in excellent agreement with experimental data. The calculated parameters were within a factor of 1.5 from the experimental values. This translated into a maximum error of 0.32 kcal mol−1 in Gibbs free energy of activation difference. The only exception was Cs for ethane with an experimental-to-calculated ratio of 3.0. Even then, the DFT estimate was within the experimental error. Furthermore, the approach managed to capture a wide range of empirical parameters as well as distinguish between monomers with close values. This robust and computationally inexpensive method can be applied to elucidate the reactivity of much larger species of industrial importance and rationally design the next generation of branching and chain-transfer agents for low density polyethylene (LDPE) systems.


Archive | 2000

catalyst systems for polycondensation reactions.

Jens-Peter Wiegner; Rolf Eckert; Volkmar Voerckel; Marion Sela; Sarat Munjal


Archive | 2009

High pressure low density polyethylene resins with improved optical properties produced through use of highly active chain transfer agents

Teresa P. Karjala; Christopher Eddy; Mehmet Demirors; Wallace W. Yau; Sarat Munjal; Stefan Hinrichs; Jian Wang; Otto J. Berbee; Werner Zschoch; Cornelis J. Hosman; Lonnie G. Hazlitt


Archive | 1993

Preparation of polycarbonate with subsequent addition of chain terminator and base

Sarat Munjal; Thomas M. Wardlow; Andrew F. Hall


Archive | 2009

Long chain branched (LCB), block or interconnected copolymers of ethylene in combination with one other polymer

Mehmet Demirors; Teresa P. Karjala; Christopher Eddy; Lonnie G. Hazlitt; Pak-Meng Cham; Sarat Munjal; Wallace W. Yau


Archive | 2001

Procedure for the manufacture of poly-(ethylene terephthalate)

Jens-Peter Wiegner; Volkmar Voerckel; Sarat Munjal


Archive | 1993

Elimination of monocarbonate from polycarbonate

Sarat Munjal; Che I. Kao


Archive | 1998

Method of making polycarbonate prepolymer and method of making high molecular weight polycarbonate

Michael G. Ormand; Sarat Munjal


Archive | 2000

Extruded products from polyethylene terephthalate with reduced acetaldehyde content and process of their production

Jens-Peter Wiegner; Volkmar Voerckel; Marion Nagel; Rolf Eckert; Marion Sela; Sarat Munjal


Archive | 2010

Process to make long chain branched (LCB), block, or interconnected copolymers of ethylene

Teresa P. Karjala; Sean W. Ewart; Christopher R. Eddy; Alfred E. Vigil; Mehmet Demirors; Sarat Munjal; Wallace W. Yau

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