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10 October 2018 | Story UFS | Photo Sonia Small
Kovsies Dream Team takes the netball crown
The Dream Team from the UFS celebrate their victory after beating Tuks by 63-59 in the final of the Varsity Netball competition.


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The Kovsie netball team has the Varsity Netball trophy, one of the most prestigious in university sport, back in the cabinet. With this, they are now the most successful team in the history of the competition, having won three (2013, 2014 and 2018) of the six titles.

The Dream Team earned the prize thanks to a brilliant performance in the final against the defending champs, Tuks, winning by 63-59 in front of a sold-out Callie Human Centre on Monday 8 October 2018. It was the first final staged in Bloemfontein.

The Kovsies was in the lead after each quarter, but Tuks seemed to ascend in the final quarter, leading by 49-46 with nine minutes remaining. The home team then called the power play (when goals score two points) and during a golden five minutes, they built up a 63-55 lead to seal the match.

It was a brilliant turnaround for the Dream Team after losing twice to the same team in July – with 10 and 18 goals.

“The team played excellently, and I am so proud of their performance. I watched them perform throughout this year’s Varsity Netball series and want to congratulate them on their victory on behalf of the university’s executive management and the entire university community,” said Prof Francis Petersen, Rector and Vice-Chancellor of the University of the Free State. 

“There’s nothing greater than playing for a great team that supports you and trusts you; thus, every time you go on court you want to give your all for them,” said Khanyisa Chawane, who played centre and wing attack in the final.

“We came a long way; there was no way we were going to give it away once we got to the final. Kovsies have a legacy and this is a legacy we want to carry through.”

Chawane was named the Player of the Tournament. She is the first player to be awarded the best player title in the Premier League, National Championship, and Varsity Netball in the same year.

Centre-court player Sikholiwe Mdletshe also referred to the legacy.

“We are starting our legacy, we knew we had to win, other teams can’t come here and dominate.”

“It is such an honour, the fact that we could do it in front of our home crowd support. We waited very long for this,” said captain Alicia Puren, who played in her final game after five seasons with the Kovsies.

According to Burta de Kock, the coach, the players used the power play in the final quarter very well in which they scored eight goals to four.  “We spoke a lot about being calm and keeping position in those two minutes.” De Kock said the large crowd was a huge advantage. “We’ve never had such a massive crowd before. It definitely helped us.”

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Carbon dioxide makes for more aromatic decaffeinated coffee
2017-10-27


 Description: Carbon dioxide makes for more aromatic decaffeinated coffee 1b Tags: Carbon dioxide makes for more aromatic decaffeinated coffee 1b 

The Inorganic Group in the Department of Chemistry
at the UFS is systematically researching the utilisation
of carbon dioxide. From the left, are, Dr Ebrahiem Botha,
Postdoctoral Fellow; Mahlomolo Khasemene, MSc student;
Prof André Roodt; Dr Marietjie Schutte-Smith, Senior Lecturer;
and Mokete Motente, MSc student.
Photo: Charl Devenish

Several industries in South Africa are currently producing hundreds of thousands of tons of carbon dioxide a year, which are released directly into the air. A typical family sedan doing around 10 000 km per year, is annually releasing more than one ton of carbon dioxide into the atmosphere.

The Inorganic Chemistry Research Group in the Department of Chemistry at the University of the Free State (UFS), in collaboration with the University of Zurich in Switzerland, has focused in recent years on using carbon dioxide – which is regarded as a harmful and global warming gas – in a meaningful way. 

According to Prof André Roodt, Head of Inorganic Chemistry at the UFS, the Department of Chemistry has for the past five decades been researching natural products that could be extracted from plants. These products are manufactured by plants through photosynthesis, in other words the utilisation of sunlight and carbon dioxide, nitrogen, and other nutrients from the soil.

Caffeine and chlorophyll 
“The Inorganic group is systematically researching the utilisation of carbon dioxide. Carbon dioxide is absorbed by plants through chlorophyll and used to make interesting and valuable compounds and sugars, which in turn could be used for the production of important new medicines,” says Prof Roodt.

Caffeine, a major energy enhancer, is also manufactured through photosynthesis in plants. It is commonly found in tea and coffee, but also (artificially added) in energy drinks. Because caffeine is a stimulant of the central nervous system and reduces fatigue and drowsiness, some people prefer decaffeinated coffee when enjoying this hot drink late at night. 

Removing caffeine from coffee could be expensive and time-consuming, but also environmentally unfriendly, because it involves the use of harmful and flammable liquids. Some of the Inorganic Group’s research focus areas include the use of carbon dioxide for the extraction of compounds, such as caffeine from plants. 

“Therefore, the research could lead to the availability of more decaffeinated coffee products. Although decaffeinated coffee is currently aromatic, we want to investigate further to ensure better quality flavours,” says Prof Roodt.

Another research aspect the team is focusing on is the use of carbon dioxide to extract chlorophyll from plants which have medicinal properties themselves. Chemical suppliers sell chlorophyll at R3 000 a gram. “In the process of investigating chlorophyll, our group discovered simpler techniques to comfortably extract larger quantities from green vegetables and other plants,” says Prof Roodt.

Medicines
In addition, the Inorganic Research Group is also looking to use carbon dioxide as a building block for more valuable compounds. Some of these compounds will be used in the Inorganic Group’s research focus on radiopharmaceutical products for the identification and possibly even the treatment of diseases such as certain cancers, tuberculosis, and malaria.

 

 

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