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18 July 2019 | Story Julian Roup | Photo Leonie Bolleurs
Clear glass
UFS researchers Lucas Erasmus (left), researcher in the UFS Department of Physics and Prof Hendrik Swart, senior professor in the UFS Department of Physics and SARChI chair (South African Research Chairs Initiative) in Solid State Luminescent and Advanced Materials, with the equipment used for the ground-breaking research.

A revolutionary new type of window glass – in effect a transparent solar panel - is the objective of joint research being done by the University of the Free State (UFS) in South Africa and Ghent University in Belgium. 

A working model has been created which proves the viability of the process which now needs to be refined, made more efficient and brought to the market. It is hoped to achieve this within a decade.

This new product will have the capacity to revolutionise the generation of power cheaply from the sun to power homes, factories and cities in a new clean way.

Academics from the UFS, Prof Hendrik Swart and Lucas Erasmus are doing joint research with Ghent University in Belgium, to find solutions for energy production. 

The two universities entered into an agreement recently for this research into electricity generation. The research is driven by the UFS and was prompted by ever-rising electricity prices and growing demand for electricity production. South Africa lives with constant power outages which leaves people stuck in lifts and facing chaos on the roads as traffic lights cut out. Many people who can afford them now rely on generators.

Prof Hendrik Swart, senior professor in the Department of Physics at the University of the Free State and SARChI chair (South African Research Chairs Initiative) in Solid State Luminescent and Advanced Materials, says: “An innovation like this which can help to replace traditional means of carbon based fuel for power generation in our daily lives would be hugely welcome.”

Swart explains the main objective of the research: “The idea is to develop glass that is transparent to visible light, just like the glass you find in the windows of buildings, motor vehicles and mobile electronic devices. However, by incorporating the right phosphor materials inside the glass, the light from the sun that is invisible to the human eye (ultraviolet and infrared light) can be collected, converted and concentrated to the sides of the glass panel where solar panels can be mounted. 

This invisible light can then be used to generate electricity to power buildings, vehicles and electronic devices. The goal is therefore to create a type of transparent solar panel.”

Swart says this technology can be implemented in the building environment to meet the energy demands of the people inside the buildings. “The technology is also good news for the 4.7 billion cell phone users in the world, as it can be implemented in the screens of cell phones, where the sun or the ambient light of a room can be used to power the device without affecting its appearance,” he said.

Another possible application is in electric cars, where the windows can be used to help power the vehicle.

Lucas Erasmus who is working with Prof Swart adds: “We are also looking at implementing this idea into hard, durable plastics that can act as a replacement for zinc roofs. This will allow visible diffused light to enter housing and the invisible light can then be used to generate electricity. The device also concentrates the light from a large area to the small area on the sides where the solar panels are placed; therefore, reducing the number of solar panels needed and in return, reducing the cost.”

It is envisaged that the technology will take about a decade to refine and implement. This study is currently on-going, and UFS are experimenting and testing different materials in order to optimise the device in the laboratory. It then needs to be upscaled in order to test it in the field. “It is truly the technology of the future,” says 
Erasmus.

The UFS envisages that the end result of this research will provide an attractive solution to address the energy demands of buildings, electric motor vehicles and mobile electronics without affecting their appearance. 

According to Swart, the agreement entails a joint doctoral degree in which both universities will supervise the project and the awarding of the doctorate. Lucas Erasmus, a student at the UFS, has been tasked with the assignment to conduct research at both institutions.

News Archive

Out-of-the-box thinking a plus for next generation of agribusiness leaders
2017-07-07

Description: Agribusiness leaders Tags: Agribusiness leaders 

The winners of the 12th IFAMA International Student
Case Competition from Team South Africa are from
the left: JW Swanepoel, University of the Free State,
Melissa van der Merwe, University of Pretoria,
Heinrich Jantjies, Stellenbosch University, and
Johann Boonzaaier, also from Stellenbosch University.
Photo: Supplied



The International Food and Agribusiness Management Association’s International Student Case Competition, in its 12th year, brings together students from around the world to demonstrate their investigative and problem-solving skills to provide innovative solutions to practical problems.

JW Swanepoel, a PhD student at the Centre for Sustainable Agriculture at the University of the Free State (UFS) was part of an advanced case study team, representing South African universities, who won IFAMA’s International Student Case Competition. Swanepoel also presented results from his PhD study at IFAMA’s conference in Miami, Florida, where the winners were announced.

Competition a global stage to showcase solutions

The competition provides a global stage for students and their associated universities to showcase the next generation of agribusiness leaders.

This year the featured agribusiness was Bayer Crop Science. Although this company managed to expand its global footprint through its Food Chain Partnership, it faced some challenges to expand in emerging economies through small-scale farmers. Being from the African continent, Swanepoel and his team not only understood Bayer’s unique challenge but could also pre-empt some of the potential problems faced by agribusinesses that wanted to grow their footprint in emerging economies. This provided them with a competitive advantage in going head-to-head with some of the best universities in the world such as Purdue, Wageningen, Michigan, Texas A & M and Santa Clara to mention just a few.

The South African team’s presentation “Selling Lindiwe’s story” told the story of a small-scale woman cassava farmer in Mozambique who, after the death of her husband, became the main breadwinner. The South African team indicated how Bayer could play a major role in not only selling chemicals to these farmers but even more importantly to change the stories of small-scale farmers like Lindiwe. They recommended a strategic partnership with AB InBev as the main buyer for the cassava produced by these small-scale farmers, as a cheaper beer base substitute. They also recommended a local partner (Value Chain Insights) that understood the political, social and economic environment of these countries to facilitate the relationships between Bayer and its small-scale farmers.

Understanding the challenge a competitive advantage

According to the panel of judges, the innovative approach and motivations for investing in strategic partnerships with AB InBev and Value Chain Insights went beyond financial benefits, to include corporate social responsibility and rural development. Lindiwe’s story was, however, the decisive factor. The South African team was the only team to put a face and a story to the often invisible small-scale farmers.

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