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05 September 2025 | Story Sandile Ndlovu | Photo Supplied
Sandile Ndlovu
Sandile Ndlovu, Assistant Researcher in the UFS Interdisciplinary Centre for Digital Futures.

By Sandile Ndlovu, Assistant Researcher in the Interdisciplinary Centre for Digital Futures at the University of the Free State.

 


 

When I bought my laptop in my first year of university, it was fast, reliable, and felt like an investment that would last. But when I reached the third and final year of my undergraduate studies, it was a completely different story as my trusted laptop took ages to boot up, the battery barely lasted an hour, and performing simple tasks felt like a test of patience. It’s as if my laptop knew graduation was near and had decided to retire early. As I found myself at a university that relies heavily on the use of electronic products, I couldn’t help but wonder: what happens to all our obsolete electronic devices? Early last year, I came across a statistic that left me stunned: South Africa's formal recycling efforts only recover between 7% and 12% of its total electronic waste output. The rest is either stored indefinitely, dumped in landfills, or handled by informal recyclers under hazardous conditions.

Electronic waste, also known as e-waste, refers to discarded electrical and electronic equipment (EEE) and is the fastest-growing waste stream in the world. Between 2019 and 2022, the amount of e-waste generated increased by approximately 15,67%, growing from 53,6 million tonnes to 62 million tonnes. According to the Recycling of Waste and Scrap in South Africa 2023 report, e-waste is growing three times faster in South Africa than solid municipal waste. But why is this happening? Is it “just the way it is”, or is there something bigger going on? As a sociologist, I was immediately interested in understanding why e-waste is the fastest-growing waste stream. Are we buying too many electronic products indiscriminately, or is there more to the story?

One major driver of excessive e-waste generation is rooted in the capitalistic notion of “planned obsolescence”, which is the practice which sees manufacturers design products with short lifespans (in terms of functionality, necessity, as well as desirability) – in order to apply pressure on consumers to replace electronic devices frequently and arbitrarily. Despite this systematic issue with electronic products, a recent study of Gen Z (born 1997–2012) and Millennial (born 1981–1996) consumers revealed that 60% of adults don’t know what e-waste is, and 57% didn’t realise e-waste poses a threat to the environment and human health. This lack of awareness is concerning, as it may contribute to the discarding of e-waste in regular waste bins, with these products ultimately ending up in ordinary landfills, which could cause environmental problems such as atmospheric pollution through CO2 emission and ecological imbalance – all of which could seriously jeopardise environmental and human health and safety.

 

Challenges surrounding South Africa's e-waste management

While e-waste proliferation is not a uniquely South African problem, in the South African context, underdeveloped collection mechanisms and consumer hoarding within the broader e-waste management system do seem to prevent or deter effective recycling efforts, at least for those in underserviced provinces. For example, South Africa's E-waste Recycling Authority's (ERA) interactive recycling map only shows one Waste Electrical Electronic Equipment and Lighting (WEEE-L) drop-off site for the Free State and none for the Northern Cape. Consumers, including students, faced with limited options to properly dispose of their e-waste, often hoard their obsolete devices. This trend was highlighted in the findings of a recent ERA information campaign, which saw 164 tonnes of e-waste donated by 135 000 people in just two days. These challenges highlight the urgent need for better e-waste infrastructure, and the untapped potential of public engagement in e-waste collection initiatives. The question now is how can institutions of higher learning and the students studying at these institutions play a role in dismantling the barriers to e-waste management and drive meaningful change?

 

Institutions of higher learning as mediators in the e-waste management system

Institutions of higher learning are spaces where education, technological development, critical thinking, and environmental stewardship ideally converge. These are spaces in which we should question and dissect global consumer patterns brought about by unfettered capitalism, solely focused on the accumulation of profit and often to the detriment of environmental as well as social consequences. Also, by collaborating with electronic product manufacturers and recyclers to establish extended producer responsibility (EPR) initiatives, institutions could restructure the e-waste management network, developing sustainable practices and raising critical awareness. 

 

Universities can lead the charge in changing habits 

South Africa's e-waste management system requires a coordinated effort to establish permanent e-waste disposal points across all South African institutions of higher learning. This approach would not only improve the currently underdeveloped e-waste collection mechanism but also enable these institutions and students to manage their e-waste effectively. 

Given the vast number of electronic devices on campuses, which are indispensable “tools of the trade”, institutions of higher learning have the potential to significantly contribute to the amount of e-waste recovered in South Africa. Moreover, if these institutions normalise responsible e-waste disposal practices within their campuses, they can produce graduates who carry these environmentally conscious practices into their careers and daily lives. 

The challenge presented by the e-waste crisis is complex, but it also offers a transformative opportunity. The question is: Will stakeholders at institutions of higher learning, especially students, step up and become key mediators in the fight against e-waste? Is there enough urgency to convince our national institutions of higher learning of the manifold academic but also socio-environmental potential to start engaging responsibly and intellectually with this looming and complex crisis?

News Archive

Water research aids decision making on national level
2015-05-25

Photo: Leonie Bolleurs

With water being a valuable and scarce resource in the central regions of South Africa, it is no wonder that the UFS has large interdisciplinary research projects focusing on the conservation of water, as well as the sustainable use of this essential element.

The hydropedology research of Prof Pieter le Roux from the Department of Soil, Crop and Climate Sciences and his team at the UFS focuses on Blue water. Blue water is of critical importance to global health as it is cleared by the soil and stored underground for slow release in marshes, rivers, and deep groundwater. The release of this water bridges the droughts between showers and rain seasons and can stretch over several months and even years. The principles established by Prof Le Roux, now finds application in ecohydrology, urban hydrology, forestry hydrology, and hydrological modelling.

The Department of Agricultural Economics is busy with three research projects for the Water Research Commission of South Africa, with an estimated total budget of R7 million. Prof Henry Jordaan from this department is conducting research on the water footprint of selected field and forage crops, and the food products derived from these crops. The aim is to assess the impact of producing the food products on the scarce freshwater resource to inform policy makers, water managers and water users towards the sustainable use of freshwater for food production.

With his research, Prof Bennie Grové, also from this department, focuses on economically optimising water and electricity use in irrigated agriculture. The first project aims to optimise the adoption of technology for irrigation practices and irrigation system should water allocations to farmers were to be decreased in a catchment because of insufficient freshwater supplies to meet the increasing demand due to the requirements of population growth, economic development and the environment.

In another project, Prof Grové aims to economically evaluate alternative electricity management strategies such as optimally designed irrigation systems and the adoption of new technology to mitigate the substantial increase in electricity costs that puts the profitability of irrigation farming under severe pressure.

Marinda Avenant and her team in the Centre for Environmental Management (CEM), has been involved in the biomonitoring of the Free State rivers, including the Caledon, Modder Riet and part of the Orange River, since 1999. Researchers from the CEM regularly measures the present state of the water quality, algae, riparian vegetation, macro-invertebrates and fish communities in these rivers in order to detect degradation in ecosystem integrity (health).

The CEM has recently completed a project where an interactive vulnerability map and screening-level monitoring protocol for assessing the potential environmental impact of unconventional gas mining by means of hydraulic fracturing was developed. These tools will aid decision making at national level by providing information on the environment’s vulnerability to unconventional gas mining.

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