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25 August 2025 | Story Martinette Brits | Photo Stephen Collett
Prof Elizabeth Erasmus
Prof Elizabeth Erasmus during her inaugural lecture, Molecules of Change: Chemistry for a Better Tomorrow, on 20 August, highlighting how innovative chemistry can turn waste into value and promote sustainable solutions.

With climate change, resource scarcity, and environmental pollution among the most pressing challenges of our time, Prof Elizabeth (Lizette) Erasmus used her inaugural lecture on Wednesday, 20 August to show how chemistry can provide powerful, practical answers. In her lecture, Molecules of Change: Chemistry for a Better Tomorrow, she traced her journey from fundamental research to pioneering innovations that turn waste into value, protect ecosystems, and improve food security.

During her talk, Prof Erasmus – Researcher in the Department of Chemistry – recalled a moment in 2018 that reshaped her career trajectory. While preparing a Sasol research grant on copper oxide nanoparticles, an entrepreneur assisting with the proposal posed a deceptively simple challenge: “So what?” “Although upsetting at first, those two words completely reshaped my outlook,” she explained. “They inspired my journey from purely academic chemistry towards more applied, impactful research – with the mission of not only advancing science, but of also improving society and the environment.”

 

From fundamental science to global solutions

Prof Erasmus began her career in organometallic chemistry, preparing and characterising complex molecules to understand their reactivity and physical properties. Later, her focus shifted to heterogeneous catalysis, where she explored nanomaterials and surface chemistry.

Her research has since evolved towards developing sustainable technologies that address urgent global challenges. One example is agricultural innovation: using green solvents to extract cellulose from wattle tree bark to create biodegradable superabsorbent polymers. “Unlike the polyacrylates in baby diapers, these SAPs degrade into nutrients for soil microbes and plants,” she explained. “By loading them with fertiliser, we develop slow-release, water-retaining materials that improve agricultural sustainability.”

Other projects include producing biochar to restore degraded soils, creating natural growth enhancers such as wood vinegar, and designing an ‘ultimate fertiliser’ that combines these products for long-term soil health. Her group also works on environmental remediation, developing hydrophobic sponges to absorb oil spills, repurposing building waste to clean polluted water, and using innovative chemistry to convert carbon dioxide into valuable products.

“We are even looking at one of the fastest-growing waste streams: e-waste,” Prof Erasmus noted. “With more gold per ton than natural ore, e-waste represents both a challenge and an opportunity. By developing porous absorbent materials, we can selectively capture and reduce gold ions directly to metallic gold – recovering a precious resource from waste.”

She concluded by crediting her team and collaborators: “This, however, is only the tip of the iceberg. The bulk of the work lies beneath the surface, carried out by dedicated students, collaborators, mentors, colleagues, friends, and family. I owe them my deepest gratitude, for they are the ones who truly sustain this journey of transforming chemistry into solutions for a better world.”

 

About Prof Erasmus

Prof Elizabeth (Lizette) Erasmus obtained all her degrees at the University of the Free State: a BSc (2001), BSc Honours in Chemistry (2002), MSc in Chemistry (2003), and a PhD in Chemistry (2005). She has published more than 80 research papers, holds an H-index of 21, and has extensive experience in supervising MSc and PhD students.

After serving as a senior researcher at the CSIR, she returned to academia at the UFS, where her international collaborations in the Netherlands and at UC Davis broadened her focus from organometallic chemistry to heterogeneous catalysis and nanochemistry. Her expertise spans organometallic chemistry, electrochemistry, surface characterisation, and nanomaterials.

News Archive

First residence for UFS South Campus
2016-09-01

Description: First residence for UFS South Campus Tags: First residence for UFS South Campus

The residence has 146 double rooms with 17 kitchens
overall, each corridor has one kitchen. The residence
also has a gazellie and a conference room that
can accommodate 50 people.
Photo: Charl Devenish

The South Campus of the University of the Free State in Bloemfontein now has its own student residence. Completed in June 2016, the new residence can accommodate 250 undergraduate and 20 postgraduate students.
 
The residence has 270 beds, with 20 single-bedroom flats and 12 additional single rooms in the corridors.  Each of these single-bedroom flats has a kitchen, lounge, and a bathroom. There are 146 double rooms with 17 kitchens overall, each corridor has one kitchen. The residence also has a gazellie, a conference room that can accommodate 50 people, as well as eight laundry rooms with a drying area.
 
“Students at the South Campus have, up until now, been commuting from the Bloemfontein Campus and residential areas around town. We are extremely proud that accommodation will now be available to our students on the campus. Although the official opening of the residence is said to take place early in 2017, some students have already moved in,” says Prof Daniella Coetzee, Principal of the South Campus.
 
The residence was built at a cost of R57 million, which was funded by the UFS and the Department of Higher Education and Training.
 
Residence accessible to differently-abled people
The UFS strives to cater for differently-abled people by making all its buildings accessible to them. This residence is no exception, as it has two rooms available on the ground floor of Block C for differently-abled students. These rooms accommodate two students per room.
 
A one-of-a-kind newly installed water system
The residence is also the first at the university that has a grey-water system installed. Grey water is made up of bath, shower, and bathroom sink water. The water will then be reused for toilet flushing as well as for irrigation purposes on the campus.

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