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20 April 2020 | Story Prof Francis Petersen | Photo Sonia Small
Prof Francis Petersen.

Our world has changed.  The aspects that we have accepted as daily occurrences, and those that we have taken for granted, are no longer possible.  Anxiety and uncertainty have filled our lives.  After the first infections in China at the end of 2019, the Coronavirus (COVID-19) has continued to spread across the world.  The number of people infected and those who die is increasing daily, and no continent has been able to escape this pandemic.  In addition to the threat to public health, the economic and social disruption threatens the long-term livelihoods and well-being of millions.  It has been said that the rate and global spread of infection by COVID-19, and the impact it could have on a globalised financial, political, and social architecture, sets this particular pandemic apart from any other in modern times.

Not only have governments declared national emergencies and implemented lockdown policies to curb the spread of the disease, they have also taken unprecedented measures to lessen the impact on business, jobs, and the vulnerable communities in our society.   The COVID-19 outbreak has catalysed a crisis, which is questioning the confines of inherited structures that have perhaps lost their intellectual edge and global mandate.

How are universities as global institutions of higher learning managing COVID-19?  

Universities are complex institutions.  I will not attempt to describe the role and purpose of the modern university here – safe to say that the views of John Henry Newman (The Idea of a University) and Wilhelm von Humboldt (his recommended views led to the creation of the University of Berlin) dominated Western thinking about the functions of a university.  Sir Colin Lucas, former Vice-Chancellor of the University of Oxford, remarked “…(universities) are seen as vital sources of new knowledge and innovative thinking, as providers of skilled personnel and credible credentials, as contributors to innovation, as attractors of international talent and business investment into regions, as agents of social justice, and as contributors to social and cultural vitality”.  There is no doubt that universities, through their intellectual knowledge base, can add (and they do) enormously to the science of COVID-19, whether it is developing a new vaccine, modelling, and forecasting skills to understand the spread of the virus in specific regions or innovative methods for supplemental oxygen delivery.  The role played by universities in this context is vast and critical.  

Universities serve a large variety of functions in the delivery of the academic project, which involves teaching, learning, and research to maintain, manage, and develop the physical and digital infrastructure – the engagement with external stakeholders (to foster societal impact) such as alumni, schools, governments, industry, the private sector, commerce, donors, and philanthropic foundations. Many universities are training medical doctors and other healthcare professionals, engaging with academic hospitals and placing them at the forefront of the healthcare system – a very complex organisation to manage, even in times with no crises!

Many universities have disaster management committees that were rapidly activated during COVID-19 to prepare plans for the unexpected.  This pandemic, due to the extent of unfamiliarity and uncertainty thereof, can challenge these efforts and expose limitations in such plans.

It is important that universities have a framework approach of effective coordination, integration, and decision making that is centrally located but can act fast.  Although universities are not the same, there is a common drive for the health, well-being, and safety of staff and students. Typically, such a framework could converge in an Executive Centre (decision-making) or nerve centre, which should preferably be convened by the Vice-Chancellor, and include expertise in areas of scenario planning, project management, science (in this particular case it would be virologists and/or epidemiologists), communication, and institutional culture.  In order for the Executive Centre (EC) to be effective and fast-moving (with urgency and robust thinking), it should be organised around multi-disciplinary task teams, each with key responsibilities:

Teaching and Learning –with the suspension of classes (specifically in countries where there is a lockdown), alternative methods need to be utilised to deliver the academic project, and most universities have moved online (although not online in the purest form, rather emergency remote learning – turning a course virtual in a short period of time, and more importantly, doing it well, is nearly impossible for faculty members accustomed to lecturing in front of students). Based on the extent of the particular lockdown period, academic calendars need to be adjusted. Low-technology approaches to teaching and learning should be developed that are sensitive to the challenges of connectivity, bandwidth, and the type of devices that students use, realising the deep socio-economic inequalities and digital divide in our society. It is critically important to stay in touch with the students, and to provide online assistance with respect to counselling and mental health.

Research – focusing on how experimental research will be conducted during lockdown, how research contracts will be managed during this period and beyond, and whether research funding will be redirected or terminated;

Science – to understand epidemiological developments, verified information on COVID-19 (against the background of fake news);

Operations – mainly focusing on environmental hygiene and the business continuation of the physical and digital plant;

Staff – working remotely, essential services (as defined by government), and crucial university functions, constantly staying in touch with the staff, especially regarding their state of mind (mental health) due to social isolation;  

Students – with a focus on responsible student integration on the re-opening of the campus, where the principle of social distancing need to be adhered to;

Financial and Legal – responsible for financial scenario planning, short-term cash management and risk management, and mitigation; and

Communications – need to be centralised to ensure that it is consistent, correct, rapid and that it takes into account institutional culture when communicating – crises create anxiety, but keeping people informed helps reduce stress.

It is advisable to include a student voice or student input in the Teaching and Learning Task Team, as the living experience of students can thus be captured more accurately, which can enhance strategies.

It is clear that the world will operate differently post-COVID-19 than before the pandemic (‘new normal’); the EC will become the source of scenario planning on how universities will have to ‘re-imagine’ themselves post this pandemic.  It is thus critical to ensure that data, experiences (although a health crisis, an economic, and perhaps a social crisis – an opportunity as a thought experiment), ideas and new networks are captured with a strategic intent and reflection within the EC. Not only has this crisis questioned the neo-liberal economies that traditionally limit government intervention and prioritise market interests, it also asked universities to think differently about their models of teaching, research, and internationalisation, and how co-creation across boundaries and different sectors of the economy need to be imagined.

A crisis is never straightforward to manage, but an Executive Centre-type structure could not only assist universities during this period, but can add valuable strategies to position universities after such a crisis.



Prof Francis Petersen is Vice-Chancellor of the University of the Free State, South Africa. He has extensive experience in scenario planning and systems thinking in both higher education and industry.

News Archive

New world-class Chemistry facilities at UFS
2011-11-22

 

A world-class research centre was introduced on Friday 18 November 2011 when the new Chemistry building on the Bloemfontein Campus of the University of the Free State (UFS) was officially opened.
The upgrading of the building, which has taken place over a period of five years, is the UFS’s largest single financial investment in a long time. The building itself has been renovated at a cost of R60 million and, together with the new equipment acquired, the total investment exceeds R110 million. The university has provided the major part of this, with valuable contributions from Sasol and the South African Research Foundation (NRF), which each contributed more than R20 million for different facets and projects.
The senior management of Sasol, NECSA (The South African Nuclear Energy Corporation), PETLabs Pharmaceuticals, and visitors from Sweden attended the opening.

Prof. Andreas Roodt, Head of the Department of Chemistry, states the department’s specialist research areas includes X-ray crystallography, electrochemistry, synthesis of new molecules, the development of new methods to determine rare elements, water purification, as well as the measurement of energy and temperatures responsible for phase changes in molecules, the development of agents to detect cancer and other defects in the body, and many more.

“We have top expertise in various fields, with some of the best equipment and currently competing with the best laboratories in the world. We have collaborative agreements with more than twenty national and international chemistry research groups of note.

“Currently we are providing inputs about technical aspects of the acid mine water in Johannesburg and vicinity, as well as the fracking in the Karoo in order to release shale gas.”

New equipment installed during the upgrading action comprises:

  • X-ray diffractometers (R5 million) for crystal research. Crystals with unknown compounds are researched on an X-ray diffractometer, which determines the distances in angstroms (1 angstrom is a ten-billionth of a metre) and corners between atoms, as well as the arrangement of the atoms in the crystal, and the precise composition of the molecules in the crystal.
  • Differential scanning calorimeter (DSC) for thermographic analyses (R4 million). Heat transfer and the accompanying changes, as in volcanoes, and catalytic reactions for new motor petrol are researched. Temperature changes, coupled with the phase switchover of fluid crystals (liquid crystals -watches, TV screens) of solid matter to fluids, are measured.
  • Nuclear-magnetic resonance (NMR: Bruker 600 MHz; R12 million, one of the most advanced systems in Africa). A NMR apparatus is closely linked with the apparatus for magnetic resonance imaging, which is commonly used in hospitals. NMR is also used to determine the structure of unknown compounds, as well as the purity of the sample. Important structural characteristics of molecules can also be identified, which is extremely important if this molecule is to be used as medication, as well as to predict any possible side effects of it.
  • High-performance Computing Centre (HPC, R5 million). The UFS’ HPC consists of approximately 900 computer cores (equal to 900 ordinary personal computers) encapsulated in one compact system handling calculations at a billion-datapoint level It is used to calculate the geometry and spatial arrangements, energy and characteristics of molecules. The bigger the molecule that is worked with, the more powerful the computers must be doing the calculations. Computing chemistry is particularly useful to calculate molecular characteristics in the absence of X-ray crystallographic or other structural information. Some reactions are so quick that the intermediary products cannot be characterised and computing chemistry is of invaluable value in that case.
  • Catalytic and high-pressure equipment (R6 million; some of the most advanced equipment in the world). The pressures reached (in comparison with those in car tyres) are in gases (100 times bigger) and in fluids (1 500 times) in order to study very special reactions. The research is undertaken, some of which are in collaboration with Sasol, to develop new petrol and petrol additives and add value to local chemicals.
  • Reaction speed equipment (Kinetics: R5 million; some of the most advanced equipment in the world). The tempo and reactions can be studied in the ultraviolet, visible and infrared area at millisecond level; if combined with the NMR, up to a microsecond level (one millionth of a second.

Typical reactions are, for example, the human respiratory system, the absorption of agents in the brain, decomposition of nanomaterials and protein, acid and basis polymerisation reactions (shaping of water-bottle plastic) and many more.

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