Energy, Technology and Innovation

Energy is perhaps the most fundamental, dynamic and mystifying entity in our universe. Through its many transformations and manifestations, it lies at the heart of – and in reality is – everything (that we know of) in the physical world. From subatomic particles to superclusters of galaxies and the expansion of the universe, to biological and artificial life, Earth systems and biogeochemical processes, and all manner of human affairs, energy is what makes and shapes the cosmos and our modern reality.

Ultimately, it is our species’ uncanny and incomparable ability to innovate and develop technologies that harness energy ever more efficiently that has allowed us to build robust socio-economic civilizations while also drastically altering our living planet. These energy transitions throughout history have led to remarkable advancements that have touched on all aspects of the human condition, while also leading to profound consequences and existential threats.
The conservation of energy within closed systems is considered unbreakable by physicists, while energy as a more abstract concept akin to a pervasive underlying force throughout nature, is at the core of many traditional worldviews and knowledge systems.

What innovations and technologies will define our future, and will they foster a more healthful and harmonious existence within ourselves, between diverse cultures and with the natural world? Or will a hyper-technological future see humans – or some altered, augmented version of ourselves – venturing beyond our home planet and expanding into the vast cosmos? Energy, in all its physical and metaphorical forms, will lead the way, as it always has.

Featured Publications

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...
DSC07445
Daniel Henryk Rasolt
November 10, 2025
Earth Observation technologies are becoming increasingly valuable for understanding our changing world. They are also critical for formulating policies to protect ecosystems and support local communities. The availability of imagery taken from satellites, airplanes, and drones offers opportunities to detect deforestation, glacier melting, crop productivity, hurricane alerts, ocean temperatures, and much more. These applications have become wide-spread and are commonly featured in the news and on social media; an informed public can now be acutely aware of the significant effects that humans have on the landscape. However, other processes of land use change are too complex to be detected and understood solely from space. For example, detecting rich minerals, tracking illicit land activities (e.g., coca farming), and monitoring water salinity. For these and other complex land changes, the imagery itself might not be enough to understand the processes shaping these changes in the landscape. New ways of addressing these are needed. About 26 years ago, Jacqueline Geoghegan and her co authors wrote a chapter in the book People and Pixels: Linking Remote Sensing and Social Science, titled “Socializing the Pixel and Pixelizing the Social in Land-Use and Land-Cover Change.” This chapter was a pioneering step forward in extracting more information from images and linking them with the social processes behind them. It helped me during my PhD studies and subsequent research to develop a strategy for connecting quantitative data from pixels with social mechanisms that impact land change. But how do these two approaches work together? The full Interdialogue with Paulo Murillo. The role of classification in traditional land use science relies on how effectively we can classify elements on the land surface. Classification is the most relevant task in remote sensing. We want to classify or differentiate between forests and agricultural fields or among diverse types of crops using...
new_paulo
Paulo Murillo
Contributors
July 12, 2025
The Advanced LIGO detectors gathered data in three Observing Runs, O1- O3, between 2015 and 2020. During O2, on August 1st, 2017, Advanced Virgo joined the LIGO detectors operating in scientific mode, and on August 17th a detection of a collision of two neutron stars was observed. It turned out to be a treasure of astrophysical results. We dedicate this chapter to that spectacular event.
pullin
Jorge Pullin
June 7, 2025
In a complex and rapidly evolving technological, socio-economic and geopolitical landscape that is focused on a global “sustainable energy transition,” increased electromobility based on lithium batteries is often stated as a key objective. However, unbeknownst to the public, policy makers and most researchers alike, lithium in its enriched isotopic forms (6Li and 7Li) holds tremendous added value beyond its use in batteries. This is especially true in both present and future nuclear technologies. For those countries with large lithium reserves that are being prospected for rapid lithium exploitation in order to fuel the growing global electromobility sector, it is important to be aware of these added value uses when considering plans for expanding lithium extraction (plans that also hold negative environmental externalities, such as prodigious water use and contamination). Argentina – which has an established nuclear energy and research sector, as well as a current administration that seems committed to rapidly depleting the national lithium reserves – serves as a strong and dynamic case study for the importance of crafting long-term, science-based and sustainable policies around the exploitation and isotopic separation of lithium. Argentina owns almost a third of the lithium reserves in South America which, together with those of Chile and Bolivia, represent more than half of the world’s lithium availability. Battery-grade lithium carbonate (Li2CO3) is produced from the Puna brines in the Andes of Northwestern Argentina – it is exported and only a small fraction remains in Argentina as royalties (around 3%) and the declared profits of the mining companies.  This article analyzes the use of lithium isotopes (6Li and 7Li) in fission and fusion nuclear reactors and in nuclear technology devices, such as scintillation plates, neutron detectors and shields. These uses of lithium in nuclear technologies have the potential to add value to Argentina’s limited lithium reserves...
corti
Horacio Corti
Contributors
September 17, 2024
Strengthening the socio-ecological systems of Indigenous communities is of high priority for achieving global “sustainable development” and environmental goals.  For Indigenous people to remain resilient stewards of ecosystems and culture in the face of anticipated threats like climate change and territorial exploitation, they need access to reliable and affordable sources of decentralized “off-grid” clean energy.
DSC07445
Daniel Henryk Rasolt
Contributors

Interdialogues

Jordi Soriano: Neurophysics, Neuronal Cultures, Neurodegenerative Disease, and Augmented Humans

Ashish Kothari: Biocultural Diversity in India, Rights of Nature, and Earthy Governance

K. Brandon Barker: Anthropomorphism, Cognition, Human Exceptionalism, Computational Folklore, and AI

Arnab Bhattacharya: Science Communication and Education, Public Health, Semiconductors, and Energy Technologies in India

Marta González: Complexity, Urban Sciences, Mobility Data, and Sustainable Cities in Latin America

Javier Buldú: Complexity, Football, AI, and Networks of Networks

Sign up to get The InterPlex newsletter

All Articles

Filter by Subcategory
Subcategories
Subcategories
Anthropocene and Geoengineering
Artificial Intelligence
Augmented and Virtual Reality
Batteries and Storage
Biotechnology
Decentralization and Microgrids
Emerging and Disruptive Technologies
Hybrid Systems and Cogeneration
Hydropower
Information and Communication Technologies
Internet of Things and Smart Devices
Nuclear Fission and Fusion
Quantum Computing and Blockchain
Renewables and Efficiency
Space Technologies
Transportation and Infrastructure
August 5, 2026
For Afro-Pacific communities, biodiversity and cultural heritage are not separate concerns—protecting one means protecting the other. Their interrelation makes a compelling case for biocultural heritage as a framework for research, governance, and conservation.
Rowan-Glass_Bogota_8-17-22
Rowan Glass
Contributors
July 16, 2026
Earth’s Memory, Part One Abstract Every rock carries a fragment of Earth’s memory. Collectively, these fragments preserve an extraordinary geological record spanning more than 4.5 billion years of planetary evolution. This article traces that record through the deep-time history of our planet—from the formation of Earth’s earliest crust and the Great Oxidation Event, when microbial life transformed the planet’s atmosphere, to the five great mass extinctions that repeatedly reset the trajectory of life, and the Snowball Earth episodes, when our planet experienced its most extreme glaciation. Drawing on more than two decades of fieldwork across Himalaya and Peninsular India, among ancient rocks, minerals, and fossils that bear direct witness to these planetary transformations, it explores how geologists reconstruct Earth’s early history from evidence preserved in the geological archives. Taken together, these geological events reveal a recurring pattern: Earth is a dynamic system in which every major crisis has also created the conditions for new and often more complex forms of life to evolve. That pattern, written into rocks billions of years old, continues to shape the planet today.    I first learned to listen to rocks long before I had the words to describe what that meant.  It began in the Himalaya, the youngest mountain range on Earth, still rising, still deforming, and still recording the ongoing collision between continents. During my early fieldwork, I spent long days mapping folded strata, tracing fault scarps, and trying to understand how landscapes preserve evidence of processes operating across vastly different geological timescales. At that time, I often felt that the mountains were trying to say something in a language I had not yet learned. Over time, through fieldwork, mapping, and countless hours spent among rocks and sediments, I began to decipher that silent language.  The lesson deepened across many other landscapes of India....
Jai
Jaishri Sanwal Bhatt
Contributors
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...
DSC07445
Daniel Henryk Rasolt
December 15, 2025
In the context of risk management and in the face of environmental and economic challenges such as climate change, coastal erosion, water insecurity, and the accelerated loss of biodiversity, among others, the concept of Nature-based Solutions (NbS) has emerged. Over the past decade, this appealing concept has been consolidated as an integrative approach that seeks to address socio-environmental challenges through the sustainable management of socio-ecological systems.  The United Nations Environment Assembly defines NbS as “actions that protect, sustainably manage, and restore natural or modified ecosystems to effectively and adaptively address societal challenges, simultaneously providing benefits for human well-being and biodiversity.” In this way, NbS represents a paradigm shift from traditional solutions based exclusively on grey infrastructure, which are now insufficient in facing many large and complex contemporary challenges. The relevance of NbS resides in their capacity to generate multiple, synergistic benefits through ecosystem services and the strengthening of socio-ecological resilience. This approach recognizes the interdependence of nature and culture, and much of its success depends on how communities perceive and acknowledge the multiple benefits socio-ecological systems provide for human well-being. Therefore, NbS must emphasize the need for participatory, equitable, and inclusive processes to ensure their legitimacy and long-term sustainability. NbS encompass actions for the protection, restoration, and sustainable management of ecosystems. Although they offer multifunctional and cost-effective benefits, their implementation faces diverse challenges. Several international frameworks acknowledge NbS as priority strategies to confront climate change and biodiversity loss, promoting guidelines for their adoption at different scales. Among these frameworks are the United Nations Framework Convention on Climate Change (1992), the Convention on Biological Diversity (1992), the Sendai Framework (2015–30), and the Paris Agreement (2015). However, it is not enough to only secure financing or display technical feasibility. It is also necessary to establish a coherent legal framework, generate open and...
PeriodicoUNAL-090623-03-am - Mancera-cut
Jose Ernesto Mancera Pineda
Contributors
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...
DSC07445
Daniel Henryk Rasolt
November 10, 2025
Earth Observation technologies are becoming increasingly valuable for understanding our changing world. They are also critical for formulating policies to protect ecosystems and support local communities. The availability of imagery taken from satellites, airplanes, and drones offers opportunities to detect deforestation, glacier melting, crop productivity, hurricane alerts, ocean temperatures, and much more. These applications have become wide-spread and are commonly featured in the news and on social media; an informed public can now be acutely aware of the significant effects that humans have on the landscape. However, other processes of land use change are too complex to be detected and understood solely from space. For example, detecting rich minerals, tracking illicit land activities (e.g., coca farming), and monitoring water salinity. For these and other complex land changes, the imagery itself might not be enough to understand the processes shaping these changes in the landscape. New ways of addressing these are needed. About 26 years ago, Jacqueline Geoghegan and her co authors wrote a chapter in the book People and Pixels: Linking Remote Sensing and Social Science, titled “Socializing the Pixel and Pixelizing the Social in Land-Use and Land-Cover Change.” This chapter was a pioneering step forward in extracting more information from images and linking them with the social processes behind them. It helped me during my PhD studies and subsequent research to develop a strategy for connecting quantitative data from pixels with social mechanisms that impact land change. But how do these two approaches work together? The full Interdialogue with Paulo Murillo. The role of classification in traditional land use science relies on how effectively we can classify elements on the land surface. Classification is the most relevant task in remote sensing. We want to classify or differentiate between forests and agricultural fields or among diverse types of crops using...
new_paulo
Paulo Murillo
Contributors

Login

Update Password

Update Password *
Confirm New Password *

Sign up to get The InterPlex newsletter