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Michael C. Breadmore

Michael C. Breadmore

D-Index & Metrics

Chemistry

D-Index
53
Citations
11099
World Ranking
12998
National Ranking
291

Overview

Michael C. Breadmore is affiliated with the University of Tasmania in Australia, where their research primarily falls within the field of Engineering. Their work focuses extensively on several subfields, including Biomedical Engineering, Spectroscopy, Molecular Biology, Analytical Chemistry, and Materials Chemistry.

The main topics of Breadmore's research encompass:

  • Microfluidic and Capillary Electrophoresis Applications
  • Innovative Microfluidic and Catalytic Techniques Innovation
  • Microfluidic and Bio-sensing Technologies
  • Biosensors and Analytical Detection
  • Analytical Chemistry Methods Development
  • Additive Manufacturing and 3D Printing Technologies
  • 3D Printing in Biomedical Research

Frequent publication venues for their research include:

  • Analytica Chimica Acta
  • Journal of Chromatography A
  • Analytical Chemistry
  • Talanta
  • Angewandte Chemie International Edition

Their frequent collaborators consist of the following co-authors:

  • Fernando Maya
  • Rosanne M. Guijt
  • Feng Li
  • Hong Heng See
  • Chloe M. Taylor

Recent papers cover a range of topics mainly centered on microfluidics, 3D printing, and analytical chemistry methods. Selected recent publications include:

  • "Functional Materials for DLP-SLA 3D Printing Using Thiol-Acrylate Chemistry: Resin Design and Postprint Applications" (2022), ACS Applied Polymer Materials
  • "Inexpensive portable capillary electrophoresis instrument for Monitoring Zinc(II) in remote areas" (2022), Journal of Chromatography A
  • "Scalable 3D printing method for the manufacture of single-material fluidic devices with integrated filter for point of collection colourimetric analysis" (2020), Analytica Chimica Acta
  • "Miniaturized 3D printed solid-phase extraction cartridges with integrated porous frits" (2022), Analytica Chimica Acta
  • "An electrophoretic ion analyzer for on-site autonomous water monitoring" (2020), Journal of Chromatography A

The body of Breadmore's work contributes notably to the development of microfluidic devices and systems applied in analytical chemistry and biomedical engineering contexts. This includes fabrication techniques such as additive manufacturing and 3D printing, alongside the creation of innovative sensing technologies for biochemical and environmental monitoring applications.

Best Publications

  • 3D printed microfluidic devices: enablers and barriers

    Sidra Waheed;Joan M. Cabot;Niall P. Macdonald;Trevor Lewis

  • Cost-Effective Three-Dimensional Printing of Visibly Transparent Microchips within Minutes

    Aliaa I. Shallan;Petr Smejkal;Monika Corban;Rosanne M. Guijt

  • Microchip-based purification of DNA from biological samples.

    Michael C Breadmore;Kelley A Wolfe;Imee G Arcibal;Wayne K Leung

  • Comparing Microfluidic Performance of Three-Dimensional (3D) Printing Platforms

    Niall P. Macdonald;Joan M. Cabot;Petr Smejkal;Rosanne M. Guijt

  • Recent advances in enhancing the sensitivity of electrophoresis and electrochromatography in capillaries and microchips (2016–2018)

    Michael C Breadmore;Wojciech Grochocki;Wojciech Grochocki;Umme Kalsoom;Mónica N. Alves

  • Toward a microchip-based solid-phase extraction method for isolation of nucleic acids

    Kelley A. Wolfe;Michael C. Breadmore;Jerome P. Ferrance;Mary E. Power

  • Increasing the functionalities of 3D printed microchemical devices by single material, multimaterial, and print-pause-print 3D printing

    Feng Li;Niall P. Macdonald;Rosanne M. Guijt;Michael C. Breadmore

  • Identification of inorganic improvised explosive devices by analysis of postblast residues using portable capillary electrophoresis instrumentation and indirect photometric detection with a light-emitting diode.

    Joseph P. Hutchinson;Christopher J. Evenhuis;Cameron Johns;Artaches A. Kazarian

  • On-Column Ion-Exchange Preconcentration of Inorganic Anions in Open Tubular Capillary Electrochromatography with Elution Using Transient-Isotachophoretic Gradients. 3. Implementation and Method Development

    Michael C. Breadmore;Anne S. Palmer;Mark Curran;Miroslav Macka

  • Recent advances in enhancing the sensitivity of electrophoresis and electrochromatography in capillaries and microchips (2016–2018)

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  • Capillary and microchip electrophoresis: challenging the common conceptions.

    Michael C. Breadmore

  • Identification of homemade inorganic explosives by ion chromatographic analysis of post-blast residues

    Cameron Johns;Robert A. Shellie;Oscar G. Potter;John W. O’Reilly

  • One-Step Fabrication of a Microfluidic Device with an Integrated Membrane and Embedded Reagents by Multimaterial 3D Printing.

    Feng Li;Petr Smejkal;Niall P. Macdonald;Rosanne M. Guijt

  • Approaches to enhancing the sensitivity of capillary electrophoresis methods for the determination of inorganic and small organic anions.

    Michael C. Breadmore;Paul R. Haddad

  • Identification of inorganic ions in post-blast explosive residues using portable CE instrumentation and capacitively coupled contactless conductivity detection.

    Joseph P Hutchinson;Cameron Johns;Michael C Breadmore;Emily F Hilder

  • 100,000-fold concentration of anions in capillary zone electrophoresis using electroosmotic flow controlled counterflow isotachophoretic stacking under field amplified conditions.

    Michael C. Breadmore;Joselito P. Quirino

  • Boronate functionalised polymer monoliths for microscale affinity chromatography

    Oscar G. Potter;Michael C. Breadmore;Emily F. Hilder

  • Microfluidic isotachophoresis: a review.

    Petr Smejkal;Danny Bottenus;Michael C Breadmore;Rosanne M Guijt

  • Silica nanoparticle-templated methacrylic acid monoliths for in-line solid-phase extraction-capillary electrophoresis of basic analytes.

    Jonathan R.E. Thabano;Michael C. Breadmore;Joseph P. Hutchinson;Cameron Johns

  • Hydroxypropyl cellulose as an adsorptive coating sieving matrix for DNA separations: artificial neural network optimization for microchip analysis

    Joshua C Sanders;Michael C Breadmore;Yien C Kwok;Katie M Horsman

  • Identification of Inorganic Improvised Explosive Devices Using Sequential Injection Capillary Electrophoresis and Contactless Conductivity Detection

    Gustavo A Blanco;Yi Heng Nai;Emily F Hilder;Robert A Shellie

  • Recent advances in enhancing the sensitivity of electrophoresis and electrochromatography in capillaries and microchips

    Unknown

  • Recent advances in enhancing the sensitivity of electrophoresis and electrochromatography in capillaries and microchips (2012–2014)

    Unknown

  • Recent advances in enhancing the sensitivity of electrophoresis and electrochromatography in capillaries and microchips (2008–2010)

    Unknown

  • Recent advances in enhancing the sensitivity of electrophoresis and electrochromatography in capillaries and microchips (2006–2008)

    Unknown

Frequent Co-Authors

Rosanne M. Guijt
Rosanne M. Guijt Deakin University
Paul R. Haddad
Paul R. Haddad University of Tasmania
Emily F. Hilder
Emily F. Hilder University of South Australia
Brett Paull
Brett Paull University of Tasmania
Mirek Macka
Mirek Macka University of Tasmania
Wolfgang Thormann
Wolfgang Thormann University of Bern
Tracey C. Dickson
Tracey C. Dickson University of Tasmania
James P. Landers
James P. Landers University of Virginia
Joselito P. Quirino
Joselito P. Quirino University of Tasmania
Min Zhang
Min Zhang Jiangnan University

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