Alireza Malehmir, hunting for the metals of the future

Alireza and a colleague wearing helmets and protective clothing in a mine

Most geophysical surveys are carried out above ground, but work is underway to develop methods that will also allow them to be conducted underground, for example in mines, tunnels and boreholes.

What if the next major frontier is not in space, but deep beneath our feet? From mineral exploration to engineering seismology and carbon storage, Alireza Malehmir’s research has always focused on how we can better understand what lies beneath our feet.

Geophysics rarely makes headlines, yet it influences many decisions around the energy transition (for example where to place wind farms and store CO2) and mineral supply to infrastructure, climate research and natural hazards. Much of the work happens underground and out of sight — but the discoveries made there shape the future above ground.

Professor of geophysics Alireza Malehmir works with one of Earth science’s most hidden landscapes — the world beneath the surface. Using seismic imaging, sensors and advanced data analysis, he and his colleagues build detailed images of the subsurface to locate critical minerals, understand rock structures and study processes that are normally invisible to us.

At the Department of Earth Sciences, he leads the Smart Exploration Research Center (SERC). The focus is not only to find minerals, but to rethink how they are discovered — making exploration more precise, more efficient and less disruptive to the environment.

Demand for critical minerals increases

This matters more than ever. As demand for critical minerals increases worldwide, geophysics is becoming a key science for the future — helping society locate resources more accurately and reduce environmental impact in the process.

Portrait of Alireza

Alireza Malehmir often explain geophysics as a way of looking inside the Earth without digging it up. Photo: Mikael Wallerstedt, Uppsala University

But why would anyone devote their career to something that most people will never get to see? Why did Alireza Malehmir start exploring the hidden world beneath the earth’s surface?

“My interest really took shape during my PhD, when I saw that it was possible to image the subsurface using carefully placed recorders and controlled measurements. Before that, I understood the theory, but seeing the Earth “appear” through data was something completely different. It felt almost impossible until I experienced it myself. That moment made me realize how powerful geophysics can be. ”

He often explain geophysics as a way of looking inside the Earth without digging it up.

“In the same way that MRI can help doctors detect features inside the human body, geophysical methods help us detect structures, resources, faults, cavities, water, and other features below the surface. We use physics, measurements, and imaging to understand what is hidden in the subsurface. ”

Surveys conducted underground

Most geophysical surveys are carried out above ground, but work is underway to develop methods that will also allow them to be conducted underground, thereby enabling a view into the surrounding rock, for example in existing mines, tunnels and boreholes.

“What fascinates me most is how adaptable geophysics is. If we understand the target well enough, we can design or engineer the survey around it. That means choosing the right methods, instruments, geometry, and processing strategy for each problem. ”

What brought you to Uppsala University, Sweden?

“Sweden has a long and important history in mining, mineral exploration, and mining technology. Many important geophysical and exploration solutions have strong roots here. Uppsala University offered the right environment for me to grow scientifically, build collaborations, and work close to both fundamental research and practical applications. It felt like a perfect place to develop ideas that can have real impact. ”

Imoportant role to play

Going forward, geophysics has an important role to play, as many of society’s major challenges are connected to the subsurface. We need critical minerals for the energy transition, safe infrastructure, clean groundwater, better understanding of geological risks, and more sustainable ways of using Earth’s resources.

“Geophysics helps us investigate the subsurface with less disturbance and more precision. We have done this for example for quick-clay landslides, great step in understanding these deposits and where possibly the risky areas are. In the future, I see geophysics becoming even more integrated with geology, engineering, materials science, artificial intelligence, and advanced instrumentation, ” Malehmir concludes.

Pieces of lithium in a pile.

Rare earth elements (REEs) are 17 metals that have become increasingly important in modern technology. Lithium, for example, is used in batteries, glass, ceramics and the metal industry. Photo: Getty Images

His work has led to both scientific advances and practical innovations. He enjoys the applied side of research.

“I enjoy research that creates new knowledge, but I am also strongly motivated when that knowledge can be tested, applied, and used in real situations. The applied side forces us to be creative and practical. It makes us ask whether our ideas can survive outside the laboratory or the computer screen. For me, the most rewarding research often happens when scientific advances lead to solutions that people can actually use. We have shown this is possible helping exploration companies, infrastructure projects and for water resource exploration.”

Interested in larger mineral systems

Malehmir´s vision is to develop geophysical solutions that make complex deep targets more accessible and better understood. He is especially interested in larger mineral systems, deep targeting, and instrumentation that can be tailored to specific geological questions.

“The goal is not only to image the subsurface, but to do it in a smarter, more efficient, and more responsible way. I also want to help build strong research environments where geophysicists, geologists, engineers, tech providers, and materials scientists work together. Many of the questions we face today are too complex for one discipline alone.

Malin Eivergård

Facts: Alireza Malehmir

Current research: Complex deep targeting solutions, larger mineral systems and instrumentations for tailored targeting

What's happening right now: Growing rapidly with the center, more synergy work with geologists and material scientists

Family: married with 2 children
In my spare time: I play football in Division 1 Korpen Uppsala and enjoy playing ping-pong when I can.

Makes me happy: Seeing hard work pay off—regardless of the goals, results, or key performance indicators used to measure it.

Makes me angry: I only get angry momentarily, I aim to see things as experience, sometimes not possible though.

Hidden talent: I observe and connect.

Trait I’m proud of: Persistence

Driving force as a researcher: I am motivated by purpose, by knowing there is a reason behind the work and that the results can matter.

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