Ancient oceans stayed oxygen rich despite extreme warming

  • The Arabian Sea contained more oxygen about 16 million years ago than it does today, even though Earth’s climate was warmer at the time.
  • Powerful monsoons, shifting ocean currents, and connections between seas strongly influence oxygen levels, showing that ocean health depends on more than temperature alone.
  • Over very long timescales, oxygen levels in the oceans could increase again, although what that would mean for marine life remains uncertain.

Ancient Oceans May Hold Clues to Future Oxygen Recovery

A new study suggests that parts of the world’s oxygen depleted oceans could regain higher oxygen levels in the centuries ahead, even as global temperatures continue to rise.

Scientists from the University of Southampton (UK) and Rutgers University (USA) analyzed fossilized plankton preserved in sediments from the Arabian Sea. Their results show that during a period of intense global warming about 16 million years ago, ocean oxygen levels in this region were actually higher than they are today. Severe oxygen depletion did not emerge until roughly four million years later, after the climate began to cool.

Why the Arabian Sea Behaved Differently

The researchers also found that the Arabian Sea, located off India’s west coast, followed a different path than a comparable low oxygen region in the Pacific Ocean. This contrast points to the importance of regional influences, including strong monsoon winds, ocean circulation patterns, and water exchange from nearby seas. These local factors appear to have slowed the loss of oxygen in the Arabian Sea.

The findings were published in the Nature journal Communications Earth & Environment.

Oxygen Loss Is Already Underway Today

“Oxygen dissolved in our oceans is essential for sustaining marine life, promoting greater biodiversity and stronger ecosystems. However, over the past 50 years, two percent of oxygen in the seas worldwide has been lost each decade as global temperatures rise,” explains co-lead author, Dr. Alexandra Auderset of the University of Southampton and formerly of Max Planck Institute of Chemistry, Mainz.

She adds: “The Miocene Climatic Optimum (MCO), a period approximately 17 to 14 million years ago, had similar temperatures and atmospheric conditions to those we predict will occur after 2100. We have taken a snapshot of sea oxygenation during the MCO to help understand how things might develop a-hundred years or more from now.”

Fossil Plankton Reveal Long Term Oxygen History

To reconstruct ancient ocean conditions, the team studied microscopic fossilized plankton known as foraminifera (forams). These fossils were collected from sediment cores provided by the Ocean Drilling Program (ODP). Chemical signals preserved in the shells of these organisms allow scientists to estimate oxygen levels in seawater across millions of years.

The analysis showed that an Oxygen Minimum Zone (OMZ) was present in the Arabian Sea from the early Miocene, about 19 million years ago, until roughly 12 million years ago. During this time, oxygen concentrations stayed below around 100 micromol per kilogram of water.

Delayed Onset of Severe Oxygen Depletion

Despite these low oxygen levels, conditions were not extreme enough to trigger the release of nitrogen from seawater into the atmosphere, a process that occurs in the Arabian Sea today. That shift did not happen until after 12 million years ago, indicating that the most severe oxygen loss was delayed.

“Today parts of the Arabian sea are ‘suboxic’, supporting only limited marine life due to minimal oxygenation. This same region during the MCO, under similar climatic conditions, was hypoxic — so comparatively moderate oxygen content, supporting a wider range of organisms,” says Dr. Auderset.

Regional Ocean Forces Shape Oxygen Outcomes

Co-lead-author, Dr. Anya Hess of George Mason University, and formerly of Rutgers University and Woods Hole Oceanographic Institution, adds: “The MCO is the closest comparison we have to climate warming beyond 2100 under a high-emissions scenario. One of our previous studies shows the eastern tropical Pacific was actually well oxygenated during this period, in contrast to the deoxygenation trend we see today.

“The Arabian Sea was also better oxygenated during the MCO, but not as much as the Pacific, with moderate oxygenation and an eventual decline that lagged behind the Pacific by about 2 million years.”

Why Future Ocean Predictions Are So Complex

Dr. Auderset concludes: “Our results suggest that ocean oxygen loss, already underway today, is strongly shaped by local oceanography. Global models that focus solely on climate warming, risk not capturing the regional factors that may either amplify or counteract those more general trends.

“Our research shows ocean response to climate warming is complex, and this means that we will need to be ready to adapt to changing ocean conditions.”

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Scientists found a way to cool quantum computers using noise

Quantum computers only work when they are kept extremely cold. The problem is that today’s cooling systems also create noise, which can interfere with the fragile quantum information they are supposed to protect. Researchers at Chalmers University of Technology in Sweden have now introduced a new type of minimal quantum “refrigerator” that turns this challenge into an advantage. Instead of fighting noise, the device partially relies on it to operate. The result is highly precise control over heat and energy flow, which could help make large scale quantum technology possible.

Quantum technology is widely expected to reshape major areas of society. Potential applications include drug discovery, artificial intelligence, logistics optimization, and secure communications. Despite this promise, serious technical barriers still stand in the way of real world use. One of the most difficult challenges is maintaining and controlling the delicate quantum states that make these systems work.

Why Quantum Computers Must Be Near Absolute Zero

Quantum computers built with superconducting circuits must be cooled to temperatures very close to absolute zero (around — 273 °C). At these temperatures, materials become superconducting, allowing electrons to move without resistance. Only under these extreme conditions can stable quantum states form inside qubits, the basic units of quantum information.

These quantum states are extremely sensitive. Small changes in temperature, electromagnetic interference, or background noise can quickly erase stored information. This sensitivity makes quantum systems difficult to operate and even harder to expand.

As researchers attempt to scale up quantum computers to solve practical problems, heat and noise become harder to control. Larger and more complex systems create more opportunities for unwanted energy to spread and disrupt fragile quantum states.

“Many quantum devices are ultimately limited by how energy is transported and dissipated. Understanding these pathways and being able to measure them allows us to design quantum devices in which heat flows are predictable, controllable and even useful,” says Simon Sundelin, doctoral student of quantum technology at Chalmers University of Technology and the study’s lead author.

Using Noise as a Cooling Tool

In a study published in Nature Communications, the Chalmers team describes a fundamentally different kind of quantum refrigerator. Instead of trying to eliminate noise, the system uses it as the driving force behind cooling.

“Physicists have long speculated about a phenomenon called Brownian refrigeration; the idea that random thermal fluctuations could be harnessed to produce a cooling effect. Our work represents the closest realisation of this concept to date,” says Simone Gasparinetti, associate professor at Chalmers and senior author of the study.

At the core of the refrigerator is a superconducting artificial molecule created in Chalmers’ nanofabrication laboratory. It behaves much like a natural molecule, but instead of atoms, it is built from tiny superconducting electrical circuits.

The artificial molecule is connected to multiple microwave channels. By adding carefully controlled microwave noise in the form of random signal fluctuations within a narrow frequency range, the researchers can guide how heat and energy move through the system with remarkable precision.

“The two microwave channels serve as hot and cold reservoirs, but the key point is that they are only effectively connected when we inject controlled noise through a third port. This injected noise enables and drives heat transport between the reservoirs via the artificial molecule. We were able to measure extremely small heat currents, down to powers in the order of attowatts, or 10-18 watt. If such a small heat flow were used to warm a drop of water, it would take the age of the universe to see its temperature rise one degree Celsius,” explains Sundelin.

New Paths Toward Scalable Quantum Technology

By carefully adjusting reservoir temperatures and tracking minuscule heat flows, the quantum refrigerator can operate in multiple ways. Depending on conditions, it can function as a refrigerator, act as a heat engine, or amplify thermal transport.

This level of control is especially important in larger quantum systems, where heat is produced locally during qubit operation and measurement. Managing that heat directly inside quantum circuits could improve stability and performance in ways conventional cooling systems cannot.

“We see this as an important step towards controlling heat directly inside quantum circuits, at a scale that conventional cooling systems can’t reach. Being able to remove or redirect heat at this tiny scale opens the door to more reliable and robust quantum technologies,” says Aamir Ali, a researcher in quantum technology at Chalmers and co-author of the study.

More Information

The study Quantum refrigeration powered by noise in a superconducting circuit was published in the scientific journal Nature Communications. The authors are Simon Sundelin, Mohammed Ali Aamir, Vyom Manish Kulkarni, Claudia Castillo-Moreno, and Simone Gasparinetti from the Department of Microtechnology and Nanoscience at Chalmers University of Technology.

The quantum refrigerator was fabricated at the Nanofabrication Laboratory, Myfab, at Chalmers University of Technology.

Funding for the research was provided by the Swedish Research Council, the Knut and Alice Wallenberg Foundation through the Wallenberg Centre for Quantum Technology (WACQT), the European Research Council, and the European Union.

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