What the World Can Learn From Brazil’s Shifting Stance on Science

How the country fostered research and innovation through scientific investment – and what happened when it disinvested.
Daniel Henryk Rasolt
Interdisciplinary and intercultural researcher and writer. Founder and Chief Editor of The InterPlex.
A nexus for collaborative content, dialogue, understanding and action in an interconnected world

In 2010 Brazil’s economy was booming, students were entering higher education institutions at unprecedented rates, and quality research output was soaring.

At the time, I was visiting the country as a physics Ph.D. student, and I was struck by the enthusiastic optimism of the Brazilian researchers I met. Backed by increased government investment in science, they felt they were part of Brazil’s long-term transformation into a scientific and technological powerhouse, and a budding international hub of innovation.

Times have certainly changed.

Since 2014, Brazil has gone through a recession and a dramatic shift in governance that has led to a brutal devaluing of science and education. Funding for public universities and research institutes has been slashed by 90 percent. Laboratories have closed, scholarship funding has been cut, and young researchers have fled the country to pursue professional opportunities elsewhere. When I returned in 2021, the optimism I had initially seen was largely gone.

Brazilians recently voted out far-right President Jair Bolsonaro, who was elected in 2018 and whose administration spearheaded many of the cuts to scientific funding, in favor of Luiz Inácio “Lula” da Silva, who previously served as president between 2003 and 2010. Lula’s election has restored some cautious optimism to the scientific community in Brazil, who hope that, despite challenging economic circumstances and sociopolitical obstacles, he will reinvest in science.

Whether that happens remains to be seen. But Brazil offers other countries a case study on why scientific investment matters — and the consequences when it’s deprioritized.

Before 2014, Brazil was investing heavily in education, research, technology, and innovation that touched all levels of society. Social programs incentivized poorer families to educate their children while state-funded programs offered students hundreds of thousands of new scholarships for private higher education institutions. The public university system was also broadened to less developed parts of Brazil, with 16 new federal universities established between 2003 and 2014. A pursuit of higher education and a scientific career in Brazil seemed more accessible than ever before.

The investment appeared to be paying off. Research and innovation across the scientific spectrum expanded, while a new crop of young Brazilians trained to advance science, technology, and environmental protection. Public-private partnerships fostered large fundamental research endeavors like the Sirius Synchrotron particle accelerator, and a real-time satellite monitoring system was curbing deforestation in the Amazon.

Maybe the most illustrative example of Brazil’s erstwhile optimism was the fourth National Conference on Science, Technology, and Innovation for Sustainable Development, which was held in Brasilia, the country’s capital, the same year of my first visit. I didn’t attend, but the former president of Brazil’s Academy of Sciences, physicist Luiz Davidovich, who helped coordinate the conference, told me about the buzz around Brazil’s growing influence and potential. “It was an amazing conference, multidisciplinary and inclusive of all sectors of society,” he said.


Listen to Luiz Davidovich explain about the history of Brazil’s Academy of Sciences, the importance of public universities and research institutions to Brazil’s scientific pursuits, and the importance of investing in science and technology for any modern society.

Explore the full InterDialogue with Luiz Davidovich


Brazil was also becoming increasingly connected to the global scientific community. Government-funded programs like Science Without Borders helped send tens of thousands of young Brazilian scientists abroad, while more foreign scientists, such as myself, came to Brazil to collaborate.

From those first visits — where I collaborated with other physicists and met scientists from a range of disciplines — I came to see Brazilian researchers as important long-term partners for working on regional multidisciplinary and intercultural projects, for example research and initiatives on decentralized energy and water quality monitoring for off-grid communities.

But a complex combination of an economic downturn, a massive corruption scandalfiscal conservatism policies, and anti-scientific populist rhetoric has led to Brazil’s pronounced and shortsighted shift towards disinvesting and devaluing science — and has made such collaborations far more difficult. Widespread disinformation has also catapulted anti-scientific ideologies into the mainstream in Brazil, and large portions of Brazilian society now distrust science and education.

The socioecological consequences of disinvesting and undermining science are profound. In addition to impairing university and laboratory infrastructure, the continued funding cuts to research and higher education institutions put Brazil at risk of losing an entire generation of scientific talent.

Physicist Marcelo Knobel explained to me that due to severely limited opportunities for pursuing careers at home, young researchers are leaving Brazil in a massive brain drain that jeopardizes the country’s potential to innovate and build technological prowess both in Brazil and beyond. Lost scholarships have the greatest impact on the poorest students as well, further breeding societal inequities.


Hear Marcelo Knobel speak about the decades-long development of Brazil’s higher education and research ecosystem, it’s rapid dismantling, and the long-term consequences.

Meanwhile millions of students are losing an interest in education and science, something that Davidovich calls an “internal brain drain.” Paulo Artaxo, an environmental physicist at São Paulo University, explained the situation to me this way: “The lost funds make work very difficult, but the lost minds make it nearly impossible.”

These effects have global ramifications, as the bioculturally diverse Brazilian Amazon — one of our strongest assets in the fight against climate change — has been a notable victim of Brazil’s recent anti-scientific, anti-Indigenous, and pro-agribusiness policy and rhetoric.

An illustrative example came in 2019 when the then-director of Brazil’s space agency, INPE, plasma physicist Ricardo Galvão, was forced to defend his agency’s internationally respected deforestation monitoring and alert system, DETER, against anti-scientific slander. Between 2004 and 2012, Galvão told me, the system helped lower deforestation rates by around 80 percent. But in recent years the agency has been defunded and obstructed, and deforestation has skyrocketed. (Bolsonaro fired Galvão after his impassioned defense.)


Listen to Ricardo Galvão speak about his experience as INPE director under the Bolsonaro administration.

Explore the full InterDialogue with Ricardo Galvão


As INPE’s previous success helps show, investing in science and technology is critical to the Amazon’s long-term survival. This investment clearly cannot depend solely on fickle governments and variable funding. The stakes are far too high.

Alternative pathways to funding scientific research are needed. For example, Brazilian Earth system scientist Carlos Nobre is currently working with international partners, including MIT and Fraunhofer Institute, to pioneer the plurinational Amazonia Institute of Technology in order to reduce dependence on government funding while furthering biodiversity-driven research and innovation in the region for its long-term survival. Such endeavors benefit us all.

In facing global challenges, science should take an expansive view, and include not only the natural sciences, but also data-driven social sciences, holistic ecological and complex systems sciences, as well as the robust knowledge systems of traditional peoples.

Science can be a common language of interdisciplinary and intercultural dialogue that can foster understanding and innovation, and address a multitude of complex socioecological issues that our increasingly divided world is facing.

PXL 20221004 144642628
Science can be a common language for dialogue and understanding. Photo by D.H. Rasolt.

Anti-scientific rhetoric and misinformation, on the other hand, breeds a polarized environment where reality becomes subjective and science is categorically mistrusted and devalued. This in turn makes it easier to confuse, disinterest or even foster hostility towards science, to discredit scientists, and to allow governments to defund research and innovation. This destructive process has overtly played out over the last four years in Brazil under Bolsonaro, as it has in many other parts of the world, including, of course, the United States.

While it is true that the present anti-scientific trends across the world have been driven in large part by extreme right-wing political factions like Bolsonaro’s, the left also contains progressive and populist factions that seem increasingly disinterested with evidence. Science should be a unifying pillar and inherently nonpartisan.

An informed and scientifically literate society must demand sustainable development based on science, with the understanding that science is a dynamic process of truth-seeking that often cannot provide the certainty that politicians and the public crave. Evidence and circumstances evolve, necessitating dialogue and possible changes in policy.

Investment in science is a pillar for any dynamic, equitable modern society. Valuing science at all levels of society can help foster innovation, dialogue, understanding, and consensus that crosses disciplinary and cultural boundaries.

Whether Brazil, the U.S. or any other country defunds, attacks, or ignores science, devaluing research and innovation is detrimental to the long-term well-being of any modern society, as well as for the interconnected global community.


Editor’s note: This article was originally published by Undark in December, 2022, and is based on research conducted in the leadup to the Brazilian presidential election between Luiz Inácio “Lula” da Silva and Jair Bolsonaro.

Banner Image: The Museu do Amanha, or “The Museum of Tomorrow,” in Rio de Janeiro, Brazil. Photo by D.H. Rasolt

Authors
Daniel Henryk Rasolt
Interdisciplinary and intercultural researcher and writer. Founder and Chief Editor of The InterPlex.

I am an independent interdisciplinary researcher and writer with a background in physics. I am the Founder of Unbounded World, an initiative which provides an integrated approach to ecological and cultural preservation, and The InterPlex, a new hybrid-style publication and collaborative community that focuses on the interdisciplinary, intercultural and interconnected.

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Contributors
Carlos Nobre
Brazilian Earth System scientist. Researcher at the University of São Paulo. Co-chair of the Science Panel for the Amazon. Director of the Amazonia 4.0 project.

Brazilian Earth System scientist and senior researcher at the University of São Paulo’s Institute for Advanced Studies. Holds a PhD in Meteorology from MIT. For decades has focused primarily on the Amazon and its impact on the Earth system, as well as the risks to the Amazon caused by global climate change, deforestation and other forms of unsustainable land use.

Co-chairs the interdisciplinary and transboundary Science Panel for the Amazon and leads the Amazonia 4.0 project, both which focus on sustainable development, knowledge exchange (between scientist and between scientists and traditional communities) and fostering a nature-based socio-bioeconomy of standing forests and flowing rivers.

The recipient of numerous national and international awards and distinctions, including the AAAS Science Diplomacy Award. Is a member of the IPCC and author of several influential IPCC reports. Is a foreign member of the US National Academy of Sciences and the Royal Society, as well as a member of the Brazilian Academy of Sciences and a fellow of the World Academy of Sciences (TWAS). 

 

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Luiz Davidovich
Emeritus Professor in Quantum Optics and Quantum Information, UFRJ. Former President of the Brazilian Academy of Sciences and Secretary-General of TWAS.

I got my Ph.D.in Physics in 1976 from the University of Rochester, USA, in the field of quantum optics. After a research assistantship at the ETH in Zurich, Switzerland, from 1976 to 1977, I became a professor at the Pontifical Catholic University at Rio de Janeiro, Brazil. In 1994, I became a Full Professor at the Federal University of Rio de Janeiro, Brazil, being elected Emeritus Professor of the same institution in 2021. In the same year, I was hired as part-time Distinguished Professor at the Institute for Quantum Science and Engineering of Texas A&M University. In 2000, I was awarded the Brazilian Grand-Cross of the National Order of Scientific Merit. I was a recipient, in 2001, of the Physics prize of The World Academy of Science (TWAS), and, in 2010, of the Brazilian National Science Prize Admiral Alvaro Alberto, awarded by the Brazilian National Research Council. I have also been involved with science policy, as President of the Brazilian Academy of Sciences (2016-2022) and Secretary-General of TWAS, for the period 2019-2022, and also as member of the board of the International Science Council and committees of the InterAcademy Panel. I am Fellow of the American Physical Society and of Optica (former Optical Society of America). I am a foreign member of the European Academy of Sciences and the Chinese Academy of Sciences.

My research is in the areas of quantum optics and quantum information. I am especially enthusiastic about proposing experiments that probe subtle aspects of the quantum world. More specifically, I have been interested in the role of the environment on the dynamics of several systems. This has involved work on atomic decay, laser and micromaser dynamics, trapped ions, cavity quantum electrodynamics, and entanglement. Interaction with an environment leads to loss of quantum features, a phenomenon known as decoherence. I am particularly interested in the effect of the environment in connection to the classical limit of quantum mechanics, including chaotic systems, and have worked on proposals of experiments on decoherence and for measuring the quantum state of a field in a cavity, which have actually been implemented at Ecole Normale Supérieure, in Paris. More recently, I have been involved in the realization of experiments in the quantum optics lab at the Federal University of Rio de Janeiro, investigating, with twin-photon beams, the detection of entanglement and the relation between local and global dynamics under the action of different kinds of environment. One of the main themes of my research nowadays is quantum metrology, involving both theoretical developments and experimental realizations.

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Marcelo Knobel
Executive Director of The World Academy of Sciences (TWAS). Former Rector of the University of Campinas (Unicamp). Physicist and Advocate for Science and Higher Education.

Currently serving, since December 2024, as the Executive Director of The World Academy of Sciences (TWAS). Former rector of the University of Campinas (Unicamp), from 2017 to 2021, and Unicamp faculty member for more than three decades at the Gleb Wataghin Institute of Physics. 

The recipient of numerous awards and distinctions for scientific research in fundamental condensed matter physics, as well as for decades of work in science advocacy, science communication and higher education leadership.

Research has focused on nanostructured magnetic materials, with particular focus on superparamagnetism and magnetohyperthermia. 

Interested in collaborating on the effective communication and dissemination of science, sustainable development, science-policy frameworks, higher education advocacy and research in nanomagnetism and at the health-science interface.

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Paulo Artaxo
Environmental Physicist and Full Professor at the University of São Paulo. Research on Aerosols, Climate Change and Precipitation Patterns.

Environmental physicist at the University of São Paulo (USP), focused on global climate change, aerosols, teleconnections, precipitation patterns, cloud formation, urban air pollution and more, with a particular long-term focus on the Amazon Rainforest. Has been a visiting professor and researcher at Harvard University, NASA, the University of Stockholm, the Max Planck Institute for Chemistry, amongst others.

A Fellow of The World Academy of Sciences (TWAS), the American Association for the Advancement of Science (AAAS) and a member of the Brazilian Academy of Sciences, as well as a recipient of numerous prizes and recognitions within Brazil and around the world. A strong proponent of interdisciplinary and transboundary collaborations, and on fighting against misinformation and brain drain, in Brazil and other countries of the global south.

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Ricardo Galvão
Brazilian plasma physicist. President of the National Council for Scientific and Technological Development (CNPq). Full professor at University of São Paulo. Former Director of the National Institute for Space Research.

Since 2023 has served as President of the National Council for Scientific and Technological Development (CNPq), Brazil’s principal agency for funding scientific research, technology and innovation. Full professor of applied physics at the University of São Paulo.Former Director of the Brazilian Center for Physics Research (2004-2011), President of the Brazilian Physics Society (2013-2016), and Director of the National Institute for Space Research (2016-2019).

Bachelor’s degree in Electrical Engineering from the Fluminense Federal University (1969), a master’s degree in electrical engineering from the State University of Campinas (1972), a Ph.D. in Plasma Physics from the Massachusetts Institute of Technology (1976). Research has focused on plasma physics and thermonuclear magnetic fusion. Oversaw the operation of the University of São Paulo’s TCABR tokamak while serving as the head of the Plasmas Physics Laboratory, from 200-2016.

A member of the Brazilian Academy of Sciences and European Physical Society, and the recipient of numerous awards, both nationally and internationally, both for research and for promoting science to the general public and through the science-policy interface. An active champion for the environment, especially for fighting against deforestation in the Amazon Rainforest. 

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