Modulated Temperature Differential Scanning Calorimetry: Theoretical and Practical Applications in Polymer Characterisation (Hot Topics in Thermal Analysis and Calorimetry) by Mike Reading, Douglas J. Hourston

Modulated Temperature Differential Scanning Calorimetry: Theoretical and Practical Applications in Polymer Characterisation (Hot Topics in Thermal Analysis and Calorimetry)



Download Modulated Temperature Differential Scanning Calorimetry: Theoretical and Practical Applications in Polymer Characterisation (Hot Topics in Thermal Analysis and Calorimetry)




Modulated Temperature Differential Scanning Calorimetry: Theoretical and Practical Applications in Polymer Characterisation (Hot Topics in Thermal Analysis and Calorimetry) Mike Reading, Douglas J. Hourston
Language: English
Page: 342
Format: pdf
ISBN: 140203749X, 9781402037504
Publisher:

About the Author

Michael Reading is a Professor of Pharmaceutical Characterisation Science at the University of East Anglia, Norwich, UK. After post doctoral work in France (CNRS centre for calorimetry and thermodynamics, Marseilles), Mike Reading worked with ICI until 1997, when he left to join the IPTME in Loughborough University. In 2004 he moved to UEA to take up a chair in pharmaceutical characterisation science. Research Posts: As a senior research scientist with ICI paints, Mike Reading was involved in a wide range of materials science and analysis projects (mainly involving polymers). One outcome from his work was Modulated Temperature Differential Scanning Calorimetry which has now become a common, commercially available technique. With co-workers Azzedine Hammiche and Hubert Pollock of Lancaster University, he invented a scanning probe microscopy based technique known as of micro thermal analysis. This has become a commercially available instrument and has won a number of awards for innovation.   Douglas J. Hourston is a Professor of Polymer Technology at Loughborough University, UK, with a long career in polymer colloids research and expertise in emulsion polymerization, structured latex particles, water-dispersible polyurethanes, and film integration.  

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