
Overview
Background
Biography: Dr Muxina Konarova is Senior Lecturer in the UQ School of Chemical Engineering. She gained her PhD in Chemical Engineering at Tokyo Institute of Technology, Japan. Dr Konarova has led four academia/industry projects since 2016, securing >$5M as lead CI and her team partnered with five large organisations under her Advance Qld Research (Early) and Mid-Career Fellowships, ARENA-UQ, ARC-Linkage and Innovation Connections.
Research: Dr Konarova’s research team focuses on the development of sustainable chemical processes and is directed to address climate change, waste utilisation and provide technical solutions for a circular economy. Current chemical industries are heavily reliant on fossil-fuel feedstock and significant advances in process engineering will be required to enable a carbon-neutral chemical industry. To accelerate the transition to circularity, fossil-fuel based industries are now seeking to introduce waste products and renewables as their feedstock. However, selective catalysts and suitable reactor designs are largely unknown for these new types of feedstock (biomass, plastic waste and CO2). This lack of knowledge has prevented both commercialisation of new chemical processes and the utilisation of sustainable resources. Dr Konarova’s research program focuses on the (1) design of selective, stable and active solid catalysts; (2) integration of solid catalysts into a reactor environment where an optimum mass and heat transfer can occur. Her team uses a range of advanced spectroscopic tools to analyse reaction products, elucidate underlying reaction mechanisms and control product selectivity. The overall research aim is to identify new generations of catalysts and reactors designs and address fundamental challenges associated with catalytic conversion and contribute to the development of sustainable chemical industry.
Teaching and Learning Contributions:
Dr. Konarova is a dedicated educator at the School of Chemical Engineering, where she plays a key role in the Master of Sustainable Energy (MSE) program. She coordinates and lectures the course Energy Transitions in Industrial Processes (ENGY7003), imparting critical knowledge on sustainable practices within industrial settings. Since 2021, Dr. Konarova has also been actively involved in coordinating and teaching Process Modelling and Control (CHEE3007), a core course in the undergraduate chemical engineering curriculum at UQ. Through these roles, she integrates her expertise in energy and process engineering to provide students with a robust understanding of modern industrial processes and control systems.
Availability
- Dr Muxina Konarova is:
- Available for supervision
- Media expert
Fields of research
Qualifications
- Masters (Coursework) of Engineering, Tokyo Institute of Technology
- Doctor of Philosophy, Tokyo Institute of Technology
Works
Search Professor Muxina Konarova’s works on UQ eSpace
2012
Conference Publication
Porous MgH2/C composite with fast hydrogen storage kinetics
Konarova, Muxina, Tanksale, Akshat, Beltramini, Jorge Norberto and Lu, Gao Qing (2012). Porous MgH2/C composite with fast hydrogen storage kinetics. International Conference: Photosynthesis Research for Sustainability, Baku, Azerbaijan, 24-30 July 2011. Oxford, United Kingdom: Elsevier. doi: 10.1016/j.ijhydene.2012.02.073
2011
Journal Article
Effect of synthesis parameters on the hydrogen desorption of MgH2/C composite prepared using organo-magnesium
Konarova, Muxina, Beltramini, Jorge Norberto, Lu, Gao Qing and Tanksale,Akshat (2011). Effect of synthesis parameters on the hydrogen desorption of MgH2/C composite prepared using organo-magnesium. International Journal of Energy Engineering, 1 (1), 27-32.
2010
Journal Article
Synthesis of carbon-coated LiFePO4 nanoparticles with high rate performance in lithium secondary batteries
Konarova, Muxina and Taniguchi, Izumi (2010). Synthesis of carbon-coated LiFePO4 nanoparticles with high rate performance in lithium secondary batteries. Journal of Power Sources, 195 (11), 3661-3667. doi: 10.1016/j.jpowsour.2009.11.147
2009
Journal Article
Physical and electrochemical properties of LiFePO4 nanoparticles synthesized by a combination of spray pyrolysis with wet ball-milling
Konarova, Muxina and Taniguchi, Izumi (2009). Physical and electrochemical properties of LiFePO4 nanoparticles synthesized by a combination of spray pyrolysis with wet ball-milling. Journal of Power Sources, 194 (2), 1029-1035. doi: 10.1016/j.jpowsour.2009.06.046
2009
Journal Article
Preparation of carbon coated LiFePO4 by a combination of spray pyrolysis with planetary ball-milling followed by heat treatment and their electrochemical properties
Konarova, Muxina and Taniguchi, Izumi (2009). Preparation of carbon coated LiFePO4 by a combination of spray pyrolysis with planetary ball-milling followed by heat treatment and their electrochemical properties. Powder Technology, 191 (1-2), 111-116. doi: 10.1016/j.powtec.2008.09.013
2008
Journal Article
Preparation of LiFePO4/C composite powders by ultrasonic spray pyrolysis followed by heat treatment and their electrochemical properties
Konarova, Muxina and Taniguchi, Izumi (2008). Preparation of LiFePO4/C composite powders by ultrasonic spray pyrolysis followed by heat treatment and their electrochemical properties. Materials Research Bulletin, 43 (12), 3305-3317. doi: 10.1016/j.materresbull.2008.02.014
2008
Journal Article
Synthesis of spherical LiMn2O4 microparticles by a combination of spray pyrolysis and drying method
Taniguchi, Izumi, Fukuda, Norifumi and Konarova, Muxina (2008). Synthesis of spherical LiMn2O4 microparticles by a combination of spray pyrolysis and drying method. Powder Technology, 181 (3), 228-236. doi: 10.1016/j.powtec.2007.05.011
Funding
Current funding
Past funding
Supervision
Availability
- Dr Muxina Konarova is:
- Available for supervision
Before you email them, read our advice on how to contact a supervisor.
Available projects
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3D printing of heterogeneous catalysts
This project aims to develop printable catalyst composition and 3D print catalytic monolith using solid free form fabrication. In these student will focus on the 3D printing of various types of catalysts including zeolite, activated carbon supported (Ni, Co, Fe etc). These catalysts will be used for the conversion of bio-syngas into fuels and chemicals.
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Advanced Catalysts for Carbon Chain Growth from CO2 Hydrogenation-Derived Feedstock
Optimize catalyst efficiency for sustainable production of valuable chemicals and fuels.
Supervision history
Current supervision
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Doctor Philosophy
Non-oxide catalytic conversion of methane into aromatics over metal impregnated heirarchical zeolite
Principal Advisor
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Doctor Philosophy
Production of hydrogen using renewable energy
Principal Advisor
Other advisors: Associate Professor Simon Smart
-
Doctor Philosophy
A study of novel Ru-based catalysts for hydrogen storage and transport
Principal Advisor
Other advisors: Dr Gloria Milena Monsalve Bravo
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Doctor Philosophy
Development of catalytic systems for the conversion of mixed solid waste
Principal Advisor
Other advisors: Dr Gloria Milena Monsalve Bravo
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Doctor Philosophy
Advancing lignin valorisation: refining sustainable and bio-upgradable mono-phenolics for synthesis of high-performance fibre
Principal Advisor
Other advisors: Dr Birgitta Ebert, Ms Ping Chen
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Doctor Philosophy
The impact of nanoplastics and microplastics on health and the environment
Principal Advisor
Other advisors: Dr Nick Fletcher
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Doctor Philosophy
Advanced Catalysts for Carbon Chain Growth from CO2 Hydrogenation-Derived Feedstock
Principal Advisor
Other advisors: Dr Gloria Milena Monsalve Bravo
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Doctor Philosophy
Investigation and Demonstration at Laboratory Scale, Novel Processes to Produce Near-Zero Carbon Oxide Emissions Hydrogen and Fuels from Methane Through Pyrolysis
Associate Advisor
Other advisors: Associate Professor Simon Smart
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Doctor Philosophy
Investigation and Demonstration at Laboratory Scale, Novel Processes to Produce Near-Zero Carbon Oxide Emissions Hydrogen and Fuels from Methane Through Pyrolysis
Associate Advisor
Other advisors: Associate Professor Simon Smart
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Doctor Philosophy
Bioengineered lignin conversion into high-performance fibre monomers
Associate Advisor
Other advisors: Dr Birgitta Ebert
Completed supervision
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2024
Doctor Philosophy
Non-oxide catalytic conversion of methane into aromatics over metal impregnated heirarchical zeolite
Principal Advisor
-
2023
Doctor Philosophy
Design of Novel Multi-functional Catalyst for Co-pyrolysis of Biomass and Waste Plastic Feedstock for the Production of Renewable and Sustainable Fuels
Principal Advisor
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2020
Doctor Philosophy
Value-adding to stranded carbon resources via catalytic conversion of syngas into oxygenated fuels
Principal Advisor
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2024
Doctor Philosophy
Methane Pyrolysis in Molten Salts to Produce Low Emission Hydrogen
Associate Advisor
Other advisors: Associate Professor Simon Smart
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2023
Doctor Philosophy
Fuel-gas production via self-sustaining smouldering of biomass
Associate Advisor
Other advisors: Dr Luis Yerman
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2023
Doctor Philosophy
Experimental and Numerical Investigation of Converting Lower Density Polyethylene Polymer to Blended Diesel Fuel
Associate Advisor
Other advisors: Associate Professor Saiied Aminossadati
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2022
Doctor Philosophy
Liquid organic hydrogen carriers and their application on transfer hydrogenation and activation of metal-based catalysts
Associate Advisor
Other advisors: Professor Bronwyn Laycock, Professor Steven Pratt
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2016
Doctor Philosophy
Catalytic conversion of biorenewable-carbohydrate sources to 5-Hydroxymethylfurfural: a platform molecule for future chemical and energy
Associate Advisor
Media
Enquiries
Contact Dr Muxina Konarova directly for media enquiries about:
- biofuels
- catalysts
- gas conversion
- hydrogen
- plastic recycling
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