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  8. arrow_forward_ios Nanochemistry of emerging materials

Nanochemistry of emerging materials

explore
  • Our research
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    • Chemistry
      • arrow_forward The Atomic Medicine Initiative
      • arrow_forward Bioceramics
      • arrow_forward Hyphenated mass spectrometry
      • arrow_forward Mitochondrial-targeted anticancer drug development
    • Mathematical Sciences
      • arrow_forward Analysis, Differential Equations, and Computation
      • arrow_forward Financial Mathematics and Stochastic analysis
      • arrow_forward Mathematics and Science Education
      • arrow_forward Optimisation and Operations Research
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      • arrow_forward Theoretical Photonics
    • Physics and Advanced Materials
      • arrow_forward Brillouin imaging
      • arrow_forward Circuit QED Quantum Science
      • arrow_forward Nanochemistry of emerging materials
      • arrow_forward Nonlinear optics

Focus
Electron and ion beam chemistry, Nanoscale Fabrication, Two Dimensional Materials, Reactive Plasmas, Directed Assembly and Nanoscale Characterisation.

Group Leader
Dr Charlene Lobo

My research group develops new methods of functionalizing and tailoring the properties of advanced materials such as the two-dimensional semiconductor black phosphorus and the wide bandgap insulator hexagonal boron nitride at the nanoscale. We do this by using charged particle beams (electrons, ions, plasma beams, or a combination of all three) to dissociate molecules adsorbed from the gas phase, resulting in highly localised deposition or etching of the desired material. We have used our unique capabilities to achieve nanoscale etching of hexagonal boron nitride, to direct the assembly of nanodiamonds into ordered arrays, and to develop methods of reducing the rate of degradation of few-layer black phosphorus in ambient and humid environments. Current research is focused on emerging elemental semiconductors such as few-layered black phosphorus and layered III-V semiconductors like 2D InSe. The high reactivity and lack of stability of many of these materials poses a problem for fabrication, testing and prototyping of biomedical, sensing and photonic devices using standard techniques such as focused ion beam or reactive plasma irradiation. By developing new ways to study and employ the chemical reactions of these materials at the nanoscale, our research will enable development of ultraprecise gas sensors and photocatalysts, neuromorphic and biomedical devices and photodetectors. 

The group receives funding from several sources, including the ARC Linkage Project scheme, and the German academic network DAAD. We also have ongoing research collaborations with other UTS researchers (in Faculty of Engineering and IT, and the Institute  of Biomedical Devices), at CSIRO, Monash university, RMIT, University of Sydney, University of Bremen and international companies Thermo Fisher and ETP.

Acknowledgement of Country

UTS acknowledges the Gadigal People of the Eora Nation and the Boorooberongal People of the Dharug Nation upon whose ancestral lands our campuses now stand. We would also like to pay respect to the Elders both past and present, acknowledging them as the traditional custodians of knowledge for these lands. 

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15 Broadway, Ultimo, NSW 2007

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