Luiz Davidovich

Emeritus Professor in Quantum Optics and Quantum Information, UFRJ. Former President of the Brazilian Academy of Sciences and Secretary-General of TWAS.
Rio de Janeiro
. Brazil
Contributor Since November 2024

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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January 29, 2026
Is self-organization the answer to the foundational question of why life exhibits such complexity? And can it also serve as a guiding framework for how best to save complex webs of biodiversity amid the onslaughts of the modern world? Self-organization exists throughout nature and socioeconomic structures. It refers to the spontaneous emergence of collective, complex order within a disordered system, due to localized interactions that follow simple rules, and occurring without external controls. While conceptually abstract, given that uncertainty lies at its core, the applications of self-organization are everywhere. Advancing our understanding of the non-linear processes within complex systems that drive self-organization is also becoming increasingly important for developing evidence-based policies in a world defined by interdependence and escalating stressors. Indigenous cultures, such as those that live within complex socio-ecological systems in the Amazon ecoregion, have long embraced these principles of uncertainty, interconnectedness, and non-linear dynamics. How will their wisdom, experience, and models of socio-ecological systems integrate with evidence-based policies for protecting the Amazon ecoregion? Safeguarding the Amazon is one of our world’s most pressing, complex, and vital global challenges. Among the strategies gaining traction, supported by increasing financial investment, is the intriguing proposition to transform a portion of the region’s immense biodiversity into a sustainable “bioeconomy.” However, these proposals, and the policy makers responsible for negotiating their implementation across boundaries and cultures, often lack an understanding of how both economies and ecologies self-organize and scale. Data-driven models of self-organization and critical collective phenomena in the natural world and within traditional Indigenous sociocultural structures, along with adaptive context-based frameworks, can help guide the transboundary development of a decentralized and circular socio-bioeconomy for the Amazon. Self-Organized Criticality and the Edge of Chaos Pioneering research on self-organized criticality (SOC) began in the 1980s and was made accessible to a wider audience by...
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Daniel Henryk Rasolt
November 24, 2025
Investment in science is a pillar for any dynamic, equitable modern society, and promoting scientific literacy across all levels of society can help foster innovation, dialogue, and consensus that crosses disciplinary and cultural boundaries. Science also helps to uncover answers to foundational questions that have captivated, confounded, and divided our species for millennia. But what is “science,” and what kind of “evidence” ensures that an approach is scientific? If we take “science” to broadly mean, in its purest sense, a “dynamic search for the truth,” or more explicitly, “the pursuit and application of knowledge and understanding of the natural and social world following a systematic methodology based on evidence,” as the Science Council aptly defines it, then science extends beyond the established, highly specialized disciplines of reductionist natural sciences (physics, chemistry, biology, geoscience, and space science) that have been so successful in fostering our understanding of our planet and the cosmos. Under this definition, science also includes the rigorous data-driven (qualitative and quantitative) social sciences, the inherently non-reductionist “holistic” sciences such as ecological and Earth system sciences, and the budding interdisciplinary field of complex systems science, as well as robust traditional knowledge systems based on multi-generational experiences, observations, and reasoning. As with science, “evidence” can mean a lot of things as well, including primary research, pre-existing data, past and planned experiments, and the referencing of peer-reviewed publications and primary sources. It can also include local and traditional knowledge, thought experiments, theoretical proofs, contemplation, verifiable personal experience, and empirical observation. Broadening and weaving together these forms of scientific evidence holds the potential to address complex, interconnected global challenges and explain deep mysteries that could help unify our polarized societies around foundational understandings. Foundational Questions Foundational questions can transcend the divides of generations and cultures: Cosmology, physics, and evolutionary biology have shed...
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Daniel Henryk Rasolt
October 23, 2024
How the country fostered research and innovation through scientific investment – and what happened when it disinvested.
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Daniel Henryk Rasolt
Contributors

Luiz Davidovich: Science in Brazil, Bioeconomics, Intercultural Collaborations and Quantum Metrology

Luiz Davidovich: Anti-Science and Brain-drain in Brazil, and the Importance of Broadly Investing in Science

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