Thomas P. Davis
Researcher Next ID · RN-033470
Researcher · Chemistry
Brisbane, Australia
- Works count
- 838
- Citation count
- 48,918
- H-index
- 117
- i10-index
- 555
Research interests
Publications
Arginine-Rich Manganese Silicate Nanobubbles as a Ferroptosis-Inducing Agent for Tumor-Targeted Theranostics
ACS Nano · 2018 · 10.1021/acsnano.8b06399
Biologically Targeted Magnetic Hyperthermia: Potential and Limitations
Frontiers in Pharmacology · 2018 · 10.3389/fphar.2018.00831
Minimum information reporting in bio–nano experimental literature
Nature Nanotechnology · 2018 · https://doi.org/10.1038/s41565-018-0246-4
A Decade of the Protein Corona
ACS Nano · 2017 · https://doi.org/10.1021/acsnano.7b08008
Star Polymers
Chemical Reviews · 2016 · https://doi.org/10.1021/acs.chemrev.6b00008
Sequence-controlled methacrylic multiblock copolymers via sulfur-free RAFT emulsion polymerization
Nature Chemistry · 2016 · 10.1038/nchem.2634
Cu(0)-Mediated Living Radical Polymerization: A Versatile Tool for Materials Synthesis
Chemical Reviews · 2015 · 10.1021/acs.chemrev.5b00191
The importance of nanoparticle shape in cancer drug delivery
Expert Opinion on Drug Delivery · 2014 · 10.1517/17425247.2014.950564
Polymerization-Induced Self-Assembly (PISA) – control over the morphology of nanoparticles for drug delivery applications
Polymer Chemistry · 2013 · 10.1039/c3py01306e
Building nanostructures using RAFT polymerization
Journal of Polymer Science Part A Polymer Chemistry · 2010 · 10.1002/pola.24482
The design and utility of polymer-stabilized iron-oxide nanoparticles for nanomedicine applications
NPG Asia Materials · 2010 · 10.1038/asiamat.2010.6
Photo-responsive systems and biomaterials: photochromic polymers, light-triggered self-assembly, surface modification, fluorescence modulation and beyond
Polymer Chemistry · 2009 · 10.1039/b9py00300b
Bioapplications of RAFT Polymerization
Chemical Reviews · 2009 · https://doi.org/10.1021/cr9001403
Well-Defined Protein−Polymer Conjugates via in Situ RAFT Polymerization
Journal of the American Chemical Society · 2007 · 10.1021/ja070956a
Complex Macromolecular Architectures by Reversible Addition Fragmentation Chain Transfer Chemistry: Theory and Practice
Macromolecular Rapid Communications · 2007 · 10.1002/marc.200600805
Formation of honeycomb‐structured, porous films via breath figures with different polymer architectures
Journal of Polymer Science Part A Polymer Chemistry · 2006 · 10.1002/pola.21334
RAFT and click chemistry: A versatile approach to well-defined block copolymers
Chemical Communications · 2006 · 10.1039/b611224b
Xanthate Mediated Living Polymerization of Vinyl Acetate: A Systematic Variation in MADIX/RAFT Agent Structure
Macromolecular Chemistry and Physics · 2003 · 10.1002/macp.200390089
RAFTing down under: Tales of missing radicals, fancy architectures, and mysterious holes
Journal of Polymer Science Part A Polymer Chemistry · 2002 · 10.1002/pola.10567
Origin of Inhibition Effects in the Reversible Addition Fragmentation Chain Transfer (RAFT) Polymerization of Methyl Acrylate
Macromolecules · 2002 · 10.1021/ma0203445
Reversible Addition−Fragmentation Chain Transfer Polymerization Initiated with Ultraviolet Radiation
Macromolecules · 2002 · 10.1021/ma0204296
Handbook of Radical Polymerization
Journal · 2002 · https://doi.org/10.1002/0471220450
Kinetic Investigations of Reversible Addition Fragmentation Chain Transfer Polymerizations: Cumyl Phenyldithioacetate Mediated Homopolymerizations of Styrene and Methyl Methacrylate
Macromolecules · 2001 · 10.1021/ma010349m
Critically evaluated rate coefficients for free-radical polymerization, 3. Propagation rate coefficients for alkyl methacrylates
Macromolecular Chemistry and Physics · 2000 · https://doi.org/10.1002/1521-3935(20000801)201:12<1355::aid-macp1355>3.0.co;2-q
Critically evaluated rate coefficients for free‐radical polymerization, 2.. Propagation rate coefficients for methyl methacrylate
Macromolecular Chemistry and Physics · 1997 · https://doi.org/10.1002/macp.1997.021980518
Current projects
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