
Overview
Background
Overview:
Simon Smart is an Associate Professor in the School of Chemical Engineering at The University of Queensland. He is the UQ Director of the Net Zero Australia study and a Chief Investigator in the ARC Centre of Excellence for Green Electrochemical Transformation of CO2 (GETCO2). Simon completed his BE/BSc and PhD degrees in Chemical Engineering at The University of Queensland in 2003 and 2008 respectively. From 2008 until 2012, Simon was a research fellow in the Films and Inorganic Membrane Laboratory Group of Em.Prof. Joe Diniz da Costa in Chemical Engineering at UQ, where he led inorganic membrane research into hydrogen production, carbon dioxide capture, oxygen production, desalination and membrane reactor technologies. He pioneered metal, metal oxide silica and organosilica membranes, and was amongst the first researchers globally to apply Rapid Thermal Processing (RTP) to inorganic membranes.
Simon has been working with the UQ Dow Centre for Sustainable Engineering Innovation since it’s inception in 2014, where he has focussed on the use of molten metals and molten salts as liquid catalysts for the production of turquoise hydrogen from methane using pyrolysis and CO2 utilisation to produce syngas using dry reforming. He also specialises in broader energy system modelling and decarbonisation pathways, exemplified in projects with the Future Fuels CRC, Net Zero Australia study and GETCO2.
Simon has 147 publications including 9 book chapters and 120 international journal articles at an h-index of 44, with two Highly Cited papers in chemistry and geoscience. He was selected as one of the 2018 Class of Influential Researchers by Industrial & Engineering Chemistry Research. Simon was awarded a Queensland Government Early Career Researcher Fellowship in 2012, and a prestigious UQ Foundation Research Excellence Award for work on 'Low CO2 Iron and Petrochemicals Production' in 2016. Simon was the Secretary for the Membrane Society of Australasia from 2011 - 2013, where he served on the board of directors from 2010 - 2014.
Research Interests:
Simon's research is centred around the sustainable production and use of energy and chemicals - including the development of enabling technologies and processes for the production of clean energy, materials and water. This involves: the design and development of inorganic membranes and hybrid nanocomposite materials for gas and water separation (particularly for carbon capture); the use of molten metals and molten salts as liquid catalysts for low CO2 hydrogen production through methane pyrolysis, CO2 utilisation to produce syngas through dry reforming, and low CO2 iron production via molten iron salts. Simon also specialises in broader energy system modelling and decarbonisation pathways.
Teaching and Learning:
Simon is currently the course coordinator for: Energy Systems, and Sustainable Energy Technologies and Supply Systems. He teaches into Process Systems Analysis.
Availability
- Associate Professor Simon Smart is:
- Available for supervision
Fields of research
Qualifications
- Bachelor of Engineering, The University of Queensland
- Doctor of Philosophy, The University of Queensland
Works
Search Professor Simon Smart’s works on UQ eSpace
2019
Journal Article
The role of private sector off-grid actors in addressing India's energy poverty: an analysis of selected exemplar firms delivering household energy
Heynen, Anthony P., Lant, Paul A., Sridharan, Srinivas, Smart, Simon and Greig, Chris (2019). The role of private sector off-grid actors in addressing India's energy poverty: an analysis of selected exemplar firms delivering household energy. Energy and Buildings, 191, 95-103. doi: 10.1016/j.enbuild.2019.03.016
2019
Journal Article
Simulation of multicomponent gas transport through mixed-matrix membranes
Monsalve-Bravo, Gloria M., Smart, Simon and Bhatia, Suresh K. (2019). Simulation of multicomponent gas transport through mixed-matrix membranes. Journal of Membrane Science, 577, 219-234. doi: 10.1016/j.memsci.2019.02.013
2019
Journal Article
Generating linked technology-socioeconomic scenarios for emerging energy transitions
Small, Mitchell J., Wong-Parodi, Gabrielle, Kefford, Benjamin M., Stringer, Martin, Schmeda-Lopez, Diego R., Greig, Chris, Ballinger, Benjamin, Wilson, Stephen and Smart, Simon (2019). Generating linked technology-socioeconomic scenarios for emerging energy transitions. Applied Energy, 239, 1402-1423. doi: 10.1016/j.apenergy.2019.01.215
2019
Book Chapter
Understanding constraints to the transformation rate of global energy infrastructure
Lane, Joe L., Smart, Simon, Schmeda-Lopez, Diego, Hoegh-Guldberg, Ove, Garnett, Andrew, Greig, Chris and McFarland, Eric (2019). Understanding constraints to the transformation rate of global energy infrastructure. Advances in energy systems: the large-scale renewable energy integration challenge. (pp. 67-83) Chichester, West Sussex, United Kingdom: Wiley. doi: 10.1002/9781119508311.ch4
2018
Journal Article
Evaluating the membrane fouling formation and chemical cleaning strategy in forward osmosis membrane filtration treating domestic sewage
Ab Hamid, Nur Hafizah, Ye, Liu, Wang, David K., Smart, Simon, Filloux, Emmanuelle, Lebouteiller, Thibault and Zhang, Xiwang (2018). Evaluating the membrane fouling formation and chemical cleaning strategy in forward osmosis membrane filtration treating domestic sewage. Environmental Science: Water Research & Technology, 4 (12), 2092-2103. doi: 10.1039/c8ew00584b
2018
Journal Article
Estimation of pore size distribution of amorphous silica-based membrane by the activation energies of gas permeation
Ji, Guozhao, Gao, Xuechao, Smart, Simon, Bhatia, Suresh K., Wang, Geoff, Hooman, Kamel and da Costa, João C. Diniz (2018). Estimation of pore size distribution of amorphous silica-based membrane by the activation energies of gas permeation. Processes, 6 (12) 239, 239. doi: 10.3390/pr6120239
2018
Journal Article
Creating hydrothermally stable inorganic membrane interlayers by limiting the anatase-to-rutile (ATR) transition temperature in doped-titania
Martens, Dana L., Motuzas, Julius, Smart, Simon and Diniz da Costa, João C. (2018). Creating hydrothermally stable inorganic membrane interlayers by limiting the anatase-to-rutile (ATR) transition temperature in doped-titania. Industrial and Engineering Chemistry Research, 57 (33) acs.iecr.8b01260, 11381-11389. doi: 10.1021/acs.iecr.8b01260
2018
Other Outputs
Identifying regionally dependent barriers in the Carbon Capture and Storage industry
Kefford, Benjamin, Schmeda-Lopez, Diego, Stringer, Martin, Greig, Chris, Smart, Simon, Small, Mitchell and Wong-Parodi, Gabrielle (2018). Identifying regionally dependent barriers in the Carbon Capture and Storage industry. School of Chemical Engineering, Dow Centre for Sustainable Engineering Innovation.
2018
Journal Article
Substrate effect on carbon/ceramic mixed matrix membrane prepared by a vacuum-assisted method for desalination
Song, Yingjun, Motuzas, Julius, Wang, David K., Birkett, Greg, Smart, Simon and da Costa, João C. Diniz (2018). Substrate effect on carbon/ceramic mixed matrix membrane prepared by a vacuum-assisted method for desalination. Processes, 6 (5) 47, 47. doi: 10.3390/pr6050047
2018
Journal Article
Inter-layer free cobalt-doped silica membranes for pervaporation of ammonia solutions
Yang, Xing, Sheridan, Sean, Ding, Lining, Wang, David K., Smart, Simon, Diniz da Costa, João C., Liubinas, Audra and Duke, Mikel (2018). Inter-layer free cobalt-doped silica membranes for pervaporation of ammonia solutions. Journal of Membrane Science, 553, 111-116. doi: 10.1016/j.memsci.2018.02.049
2018
Journal Article
Learning from experience in the water sector to improve access to energy services
Curran, Franziska, Smart, Simon, Lacey, Justine, Greig, Chris and Lant, Paul (2018). Learning from experience in the water sector to improve access to energy services. Utilities Policy, 51, 41-50. doi: 10.1016/j.jup.2018.01.005
2018
Conference Publication
Cost-optimal helium capture ratio from different natural gas sources by integrated membrane process designs
Quader, Md Abdul, Smart, Simon and Rufford, Thomas E. (2018). Cost-optimal helium capture ratio from different natural gas sources by integrated membrane process designs. 1st International Conference on Energy-efficient Separation (iEESEP2018), Melbourne, 23-27 January 2018.
2018
Conference Publication
Techno-economic evaluation of multistage membrane combinations using three different materials to recover helium from natural gas
Quader, M. Abdul, Smart, Simon and Rufford, Thomas E. (2018). Techno-economic evaluation of multistage membrane combinations using three different materials to recover helium from natural gas. 13th International Symposium on Process Systems Engineering – PSE 2018, San Diego, CA, United States, 1-5 July 2018. Amsterdam, Netherlands: Elsevier. doi: 10.1016/B978-0-444-64241-7.50195-6
2017
Journal Article
Defection, recruitment and social change in cooking practices: energy poverty through a social practice lens
Herington, M. J., Lant, P. A., Smart, S., Greig, C. and van de Fliert, E. (2017). Defection, recruitment and social change in cooking practices: energy poverty through a social practice lens. Energy Research and Social Science, 34, 272-280. doi: 10.1016/j.erss.2017.09.001
2017
Journal Article
Vacuum film etching effect of carbon alumina mixed matrix membranes
Song, Yingjun, Wang, David K., Birkett, Greg, Smart, Simon and da Costa, Joao C. Diniz (2017). Vacuum film etching effect of carbon alumina mixed matrix membranes. Journal of Membrane Science, 541, 53-61. doi: 10.1016/j.memsci.2017.06.082
2017
Journal Article
Dialkyl carbonate synthesis via in situ generated carbonyl dibromide on porous glass
Vuong, Khuong Q. , Effenberger, Reinhard, Zilberman, Joseph, Smart, Simon, Williams, Craig M. and McFarland, Eric W. (2017). Dialkyl carbonate synthesis via in situ generated carbonyl dibromide on porous glass. ACS Sustainable Chemistry & Engineering, 5 (9), 7492-7495. doi: 10.1021/acssuschemeng.7b01487
2017
Journal Article
Is MSW derived DME a viable clean cooking fuel in Kolkata, India?
Grové, Johannes, Lant, Paul A., Greig, Chris R. and Smart, Simon (2017). Is MSW derived DME a viable clean cooking fuel in Kolkata, India?. Renewable Energy, 124, 50-60. doi: 10.1016/j.renene.2017.08.039
2017
Journal Article
Producing a CO2-neutral clean cooking fuel in India – where and at what cost?
Grove, Johannes, Greig, Chris R., Smart, Simon and Lant, Paul A. (2017). Producing a CO2-neutral clean cooking fuel in India – where and at what cost?. International Journal of Hydrogen Energy, 42 (30), 19067-19078. doi: 10.1016/j.ijhydene.2017.06.070
2017
Other Outputs
Surprises up the energy ladder
Pascale, Andrew, Chakravarty, Shoibal, Lant, Paul, Smart, Simon and Greig, Chris (2017). Surprises up the energy ladder. Energy and Poverty Research Group Working Paper Series. 1. UQ Energy Initiative, The University of Queensland. doi: 10.14264/uql.2017.373
2017
Journal Article
Mixed matrix carbon stainless steel (MMCSS) hollow fibres for gas separation
Schmeda-Lopez, Diego R., Smart, Simon, Meulenberg, Wilhelm A. and Diniz da Costa, João C. (2017). Mixed matrix carbon stainless steel (MMCSS) hollow fibres for gas separation. Separation and Purification Technology, 174, 150-158. doi: 10.1016/j.seppur.2016.10.009
Funding
Current funding
Past funding
Supervision
Availability
- Associate Professor Simon Smart is:
- Available for supervision
Before you email them, read our advice on how to contact a supervisor.
Available projects
-
Perception and uptake of novel CO2 transformation technologies: What can we do with the CO2?
We seek a student interested in understanding how the public perceives new technologies for transforming carbon dioxide (CO2) into useful products and chemicals. The student will collaborate with experts to:
- conduct life-cycle and cost-benefit analyses of different CO2 transformation technologies;
- develop frameworks to consider both the CO2 mitigation potential and/or benefit of products produced from CO2; and
- develop methodology to integrate circular economy concepts for the fulfillment of sustainable development objectives.
- In addition, based on surveys and experimental data, the student will also model public perception and technology preferences/choices along the supply chain.
The student’s earlier training can be in a variety of disciplines but students with a background in: systems thinking, life-cycle assessment, process engineering, and/or an aptitude for applying a variety of quantitative and qualitative methods in industrial ecology are encouraged to apply. Surveys, behavioural experiments, and some econometric tools may be used in parts of the study. There would be opportunities for some methodological skills development as part of the PhD. The student should be willing to work with a team of scholars from engineering, natural and social sciences as well.
The student will be funded through the Australian Research Council’s Centre of Excellence on Green Electrochemical Transformation of CO2 (GETCO2). Students will be based at The University of Queensland in the School of Chemical Engineering under the principal supervisor of A/Prof Simon Smart. This position will have co-supervision with partner investigator Professor Saleem H. Ali who is based at the Department of Geography and Spatial Sciences at the University of Delaware, USA and there will also be funds available for the student to spend some significant time there.
The Australian Research Council Centre of Excellence for Green Electrochemical Transformation of Carbon Dioxide (GETCO2) gathers a critical mass of expertise to tackle the world’s biggest challenge – carbon dioxide. Led by Professor Xiwang Zhang, GETCO2 is a $45M, 7-year collaboration funded by the ARC, university, industry, and government partners. Our national university partners are The University of Queensland, Griffith University, University of Sydney, University of New South Wales, RMIT, Monash University and University of Adelaide. GETCO2 is the world’s largest research endeavour focusing on electrochemical conversion of CO2 into useful products such as fuels and chemicals. Acting as a focal point for research, training, technology translation and advice, GETCO2 is positioned as a global leader in carbon dioxide transformation. The Centre aims to generate long-term economic, social, and environmental benefits by building capacity and capability to address national and international net-zero obligations. Further information about the Centre can be found at www.getco2.org
-
Perception and uptake of novel CO2 transformation technologies: What can we do with the CO2?
We seek a student interested in understanding how the public perceives new technologies for transforming carbon dioxide (CO2) into useful products and chemicals. The student will collaborate with experts to:
- conduct life-cycle and cost-benefit analyses of different CO2 transformation technologies;
- develop frameworks to consider both the CO2 mitigation potential and/or benefit of products produced from CO2; and
- develop methodology to integrate circular economy concepts for the fulfillment of sustainable development objectives.
- In addition, based on surveys and experimental data, the student will also model public perception and technology preferences/choices along the supply chain.
The student’s earlier training can be in a variety of disciplines but students with a background in: systems thinking, life-cycle assessment, process engineering, and/or an aptitude for applying a variety of quantitative and qualitative methods in industrial ecology are encouraged to apply. Surveys, behavioural experiments, and some econometric tools may be used in parts of the study. There would be opportunities for some methodological skills development as part of the PhD. The student should be willing to work with a team of scholars from engineering, natural and social sciences as well.
The student will be funded through the Australian Research Council’s Centre of Excellence on Green Electrochemical Transformation of CO2 (GETCO2). Students will be based at The University of Queensland in the School of Chemical Engineering under the principal supervisor of A/Prof Simon Smart. This position will have co-supervision with partner investigator Professor Saleem H. Ali who is based at the Department of Geography and Spatial Sciences at the University of Delaware, USA and there will also be funds available for the student to spend some significant time there.
The Australian Research Council Centre of Excellence for Green Electrochemical Transformation of Carbon Dioxide (GETCO2) gathers a critical mass of expertise to tackle the world’s biggest challenge – carbon dioxide. Led by Professor Xiwang Zhang, GETCO2 is a $45M, 7-year collaboration funded by the ARC, university, industry, and government partners. Our national university partners are The University of Queensland, Griffith University, University of Sydney, University of New South Wales, RMIT, Monash University and University of Adelaide. GETCO2 is the world’s largest research endeavour focusing on electrochemical conversion of CO2 into useful products such as fuels and chemicals. Acting as a focal point for research, training, technology translation and advice, GETCO2 is positioned as a global leader in carbon dioxide transformation. The Centre aims to generate long-term economic, social, and environmental benefits by building capacity and capability to address national and international net-zero obligations. Further information about the Centre can be found at www.getco2.org
Supervision history
Current supervision
-
Doctor Philosophy
Integrating hydrogen from methane pyrolysis into the iron and steel industry
Principal Advisor
Other advisors: Dr Travis Mitchell, Dr Christopher Leonardi
-
Doctor Philosophy
Investigation and Demonstration at Laboratory Scale, Novel Processes to Produce Near-Zero Carbon Oxide Emissions Hydrogen and Fuels from Methane Through Pyrolysis
Principal Advisor
Other advisors: Dr Muxina Konarova
-
Master Philosophy
Decarbonising the Australian Aviation Industry: with a focus on net-zero emissions
Principal Advisor
Other advisors: Dr Saphira Rekker
-
Doctor Philosophy
Investigation and Demonstration at Laboratory Scale, Novel Processes to Produce Near-Zero Carbon Oxide Emissions Hydrogen and Fuels from Methane Through Pyrolysis
Principal Advisor
Other advisors: Dr Muxina Konarova
-
Doctor Philosophy
Production of hydrogen using renewable energy
Associate Advisor
Other advisors: Dr Muxina Konarova
-
Doctor Philosophy
Engineering Mixed-Matrix Membranes (MMMs) for Flue Gas Separation
Associate Advisor
Other advisors: Dr Rijia Lin, Dr Gloria Milena Monsalve Bravo
-
Doctor Philosophy
Single-atom catalysts (SACs) as potential catalysts for Electrochemical CO2 reduction
Associate Advisor
Other advisors: Professor Tom Rufford
Completed supervision
-
2024
Doctor Philosophy
Understanding the opportunities and costs of planning and operating electricity systems with high shares of variable renewable energy sources
Principal Advisor
Other advisors: Dr Joe Lane
-
2024
Doctor Philosophy
Methane Pyrolysis in Molten Salts to Produce Low Emission Hydrogen
Principal Advisor
Other advisors: Dr Muxina Konarova
-
2022
Doctor Philosophy
Access, Uptake, and Outcomes: A study of electricity access using system dynamics
Principal Advisor
Other advisors: Associate Professor Vigya Sharma
-
2022
Doctor Philosophy
Trace Element Modeling and Optimization of Byproduct Use in an Integrated Steelworks
Principal Advisor
Other advisors: Emeritus Professor Ian Cameron
-
2021
Doctor Philosophy
2D/3D Reduced Graphene/Carbon Mixed Matrix Membranes
Principal Advisor
-
2019
Doctor Philosophy
Mixed Matrix Membranes for Gas Separation
Principal Advisor
Other advisors: Emeritus Professor Suresh Bhatia, Dr Rijia Lin
-
2016
Master Philosophy
Active Anti-Fouling and Defouling of Membranes using Electrochemical Methods
Principal Advisor
-
2015
Doctor Philosophy
Hybrid Organic-inorganic Molecular Templated Membranes for Water Desalination
Principal Advisor
-
2022
Doctor Philosophy
Starch-derived Carbon Membranes for Saline Pervaporation
Associate Advisor
Other advisors: Associate Professor Greg Birkett
-
2020
Doctor Philosophy
Forward Osmosis (FO) Membrane-based Technology in Urban Wastewater Treatment
Associate Advisor
Other advisors: Professor Liu Ye
-
2020
Doctor Philosophy
Design and Techno-economic Evaluation of Multi-stage Membrane Processes for Helium Recovery from Natural Gas
Associate Advisor
Other advisors: Professor Tom Rufford
-
2019
Doctor Philosophy
Engineering models of gas permeation in mixed-matrix membranes
Associate Advisor
Other advisors: Emeritus Professor Suresh Bhatia
-
2019
Doctor Philosophy
Informing energy projects in developing countries by leveraging lessons learnt from the water sector
Associate Advisor
Other advisors: Professor Paul Lant
-
2018
Doctor Philosophy
Energy access transitions in South Asia: A study of positive deviance and the enabling mechanisms for social change at the community level
Associate Advisor
Other advisors: Associate Professor Elske van de Fliert, Professor Paul Lant
-
2018
Doctor Philosophy
The links between energy and human welfare
Associate Advisor
Other advisors: Professor Paul Lant
-
2018
Doctor Philosophy
Energy transitions in developing countries and the role of alternative liquid fuels in reducing energy poverty: Exploring the use of dimethyl ether (DME) to augment the use of imported liquefied petroleum gas (LPG) as a clean cooking fuel in India
Associate Advisor
Other advisors: Professor Paul Lant
-
2017
Master Philosophy
Investigation of Vacuum-Assisted Preparation Methods of Inorganic Membranes
Associate Advisor
-
2017
Doctor Philosophy
Private sector electrification in Base of the Pyramid marketplaces in India: opportunities for energy and business to create Shared Value
Associate Advisor
Other advisors: Professor Paul Lant
-
2016
Doctor Philosophy
High Performance ES40-Derived Silica Membranes for Desalination
Associate Advisor
-
2015
Doctor Philosophy
Development of microporous cobalt oxide silica membrane for CO2/H2 separation
Associate Advisor
-
2015
Doctor Philosophy
Silica-metal and metal-metal interactions within metal doped microporous silica xerogels and membranes
Associate Advisor
-
2014
Doctor Philosophy
Morphological, mechanical and gas transport properties of stainless steel and composite hollow fibres.
Associate Advisor
-
2014
Doctor Philosophy
Functionalized metal oxide silica membranes for gas separation
Associate Advisor
-
2014
Doctor Philosophy
Single (Iron) and Binary (Iron and Cobalt) Metal Oxide Doped Silica Membranes for Gas Separation
Associate Advisor
-
2014
Doctor Philosophy
Carbon molecular sieve membranes for desalination
Associate Advisor
Other advisors: Associate Professor Greg Birkett
-
2012
Doctor Philosophy
The Effect of Yttrium Substitution and Surface Modification on BSCF Perovskites
Associate Advisor
-
2011
Doctor Philosophy
Robust Microporous Cobalt Oxide Doped Silica Membranes for High Temperature Industrial Coal Gasification Syngas Separation
Associate Advisor
Media
Enquiries
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