Colder than Ice: Developing an Improved Quantum Degenerate Cooling Method

Simone Colombo is developing a faster method for cooling gases with a host of quantum applications

If you think about gaseous atoms, you probably picture them bouncing freely through space.

This constant motion is the natural state of atoms in the gas state. But when gases are cooled to or near absolute zero (-460 degrees Fahrenheit), they stop moving, entering what is known as the quantum degenerate state.

“When they are very cold, these atoms, they do not move anymore,” Simone Colombo, assistant professor of physics, says. “And you need to treat them in a quantum way.”

The “quantum way” involves a concept called wave-particle duality. This is when something – like an atom – sometimes behaves like a wave and sometimes like a particle. When it starts acting like waves, an atom’s wavelength is inversely proportional to its velocity. This means that when an atom is still, when it is in the quantum degenerate state, it has a very long wavelength. This leads to the creation of a “super atom.”

“You don’t know exactly where the atom is,” Colombo says. “The atoms start to behave in a collective way. So, you cannot distinguish every individual atom anymore. They all start behaving as a collective.”

Quantum degenerate gases could be extremely useful in quantum sensors. Super atoms offer much more sensitivity in detecting electric, magnetic, and gravitational fields than regular atoms.

Researchers are developing quantum sensors that can measure gravitational acceleration with applications for studying geology and space travel, navigation in submarines or extremely remote places on land, as well as quantum computing. All of these applications could benefit from a better understanding and incorporation of quantum degenerate gases.

One of the issues with these gases, however, is that they can only be produced once and then destroyed. This poses an obstacle to conducting both lab and field studies which require rigorous repetition for accuracy.

Colombo has received $607,000 from the Department of Defense to develop a more efficient way to cool atoms down to get them into the quantum degenerate state.

“This is going to be quite useful to other lab experiments where you can start studying fundamental quantum mechanics at a very high repetition rate, or for field applications where you can measure much more frequently,” Colombo says.

On a very basic level, to cool something down, you need to remove energy from it.

When it comes to quantum degenerate gases, the current cooling process starts with laser cooling. Scientists send light via a laser into the gas they want to cool. This method takes energy from the atoms in the gas and sends a higher-energy light back out, thus cooling the atoms.

However, laser cooling is rarely enough to get gases to the ultra-cold temperatures required to reach quantum degeneracy.

The next step is evaporative cooling. This process works in essentially the same way as letting a hot cup of coffee cool down before drinking. The steam that comes off the coffee is hot molecules leaving the beverage, thus lowering its average temperature.

“Evaporative cooling works the same way with atoms,” Colombo says. “You remove hot atoms so that the sample becomes colder on average and at some point, you can reach a threshold where it is cold enough to reach the quantum degenerate gas [stage].”

This process takes between 10 and 20 seconds, depending on the type of atom. While this may not seem like a long time, when scientists need to do this process over and over again, it adds up.

Colombo is developing a new method that would take less than a second, reducing cooling time by a magnitude of 10 to 100.

Colombo is focusing on an isotope called Rubidium 85. He is focusing on this type of atom because it has special properties that will allow Colombo to use a magnetic field to eliminate interactions between atoms. By removing interactions between atoms, the gas can be cooled to quantum degeneracy with only laser cooling.

This will not only make the process faster, but more efficient. Without evaporative cooling, no atoms will need to leave the experimental trap.

“The impact is potentially huge,” Colombo says. “Not only for industry, but also for research because it can speed up experiments and it can give insight into light-matter interaction in the quantum regime.”

UConn Today | Original Article ↗

Recent News

U.S. National Science Foundation Announces Transformational Award to Connecticut’s Quantum Tech Sector

For Immediate Release
July 14, 2026 —
WASHINGTON, D.C. — The U.S. National Science Foundation (NSF) announced today that
Connecticut is one of twelve regions selected to receive an NSF Regional Innovation
Engines (NSF Engines) award, joining a portfolio of regional technology clusters that are
accelerating the development of critical technologies and building a durable U.S.
technology advantage.
The NSF Quantum Technologies Engine in Connecticut, led by the University of
Connecticut in partnership with Yale University, Southern CT State University, Connecticut
State Community College, ConnCORP, CT Innovations, and the State of Connecticut, aims
to advance American quantum innovation and secure the domestic quantum supply chain
by accelerating the commercialization of quantum technologies for national defense,
biotechnology, and financial services. Through innovation, applied research leading to new
technologies, support for inventors and entrepreneurs, and workforce development, the
NSF Quantum Technologies Engine will advance quantum sensing, secured
communications, computing, and materials through shared testbed, deep-tech incubator
and translation pathways.
“NSF Engines investments in critical technologies and future industries will transform
America’s innovation infrastructure for decades to come,” says Brian Stone, performing the
duties of the NSF director. “The NSF Quantum Technologies Engine will advance the
Nation’s quantum innovation by accelerating the commercialization of quantum
technologies for national defense, biotechnology and financial services.”
The NSF Quantum Technologies Engine in Connecticut (the QuantumCT Engine) team will
initially receive a two-year, $15 million award. The funds will support the Engine’s
technology translation, workforce development, and incubator operations. The funds will
also facilitate industry and community engagement to deliver broad societal benefits. By
demonstrating sufficient progress, the QuantumCT Engine has the potential to receive
$160 million from NSF over the next decade.
The QuantumCT Engine will leverage world-leading research and innovation expertise from
UConn and Yale to pursue translational research to benefit industry, generate technology
ventures, and train the region’s workforce to enter a high-growth field. It will also deliver
technology acceleration and startup support services to drive public-private partnerships
and create a quantum ecosystem that generates economic growth.
Quantum technology industries are expected to grow to $200 billion by 2040, with the
potential to reshape sectors important to Connecticut and the country, including
aerospace, defense, drug development, manufacturing, and finance and insurance.
Connecticut companies that are adopting quantum technologies support over 270,000
jobs, accounting for 38% of wages in the state. They also are responsible for millions of
jobs and over $28.7 billion in GDP nationwide.
“Connecticut is the nation’s leading state for quantum technology adoption,” says Pamir
Alpay, UConn’s provost and the principal investigator on the NSF-funded proposal. “The
award recognizes our team’s success in establishing partnerships with industry to
accelerate quantum technologies and build a quantum-ready workforce.”
“This award application process was highly competitive, and it’s a huge win for
Connecticut,” says Gov. Ned Lamont. “Our pioneering research and advanced application
pipeline helped set us apart from the competition. Whereas other states may be theorizing
about quantum, we’re already applying it together with corporate partners across the state.
These federal funds, combined with state investment, will accelerate Connecticut’s
progress in quantum technology and help establish our state as a national and global
leader in this field—and we’re grateful for NSF’s support in getting us here. This investment
will help create good jobs and new opportunities for workers across the economy as
quantum’s impact grows.”
The NSF Engines program invests in regional ecosystems with the potential to drive
economic growth through technological innovation. The QuantumCT Engine proposal was
chosen for funding from a field of 15 finalists following a highly competitive national
selection process.
“As Connecticut’s flagship public university and the state’s land-grant institution, UConn
takes pride in its leadership role within the QuantumCT Engine. Our university is home to
more than 60 esteemed faculty members who are experts in the field of quantum science
and will collaborate with Yale researchers to drive innovative advancements and
groundbreaking discoveries in quantum research,” UConn President Radenka Maric says.
“Over the past three years, we have been working hand-in-hand with our academic, state,
industry, and community partners to position quantum technologies as a catalyst for
economic development that will fuel prosperity in our state and nation. It is crucial that
America take the lead in the global quantum race to safeguard national security, secure our
digital economy, and drive future economic growth. Furthermore, we must excel
internationally in quantum healthcare to deliver life-saving therapeutics and diagnostics. I
am grateful to Governor Lamont and Dan O’Keefe, the commissioner of the Department of
Economic and Community Development, for their grand vision for our state.”
The State of Connecticut has pledged $121 million to the QuantumCT Engine, comprising
$60 million already invested and an additional $60 million upon receiving the NSF award.
This state support will build a quantum incubator in New Haven, the Engine’s hub, among
other initiatives.
In 2023, NSF awarded the QuantumCT Engine team a $1 million NSF Engines Development
Award through UConn, which established the operational structure and built the
partnerships to drive the ecosystem. QuantumCT, a 501(c)(3) nonprofit organization, was
founded by UConn and Yale as part of the NSF Engine Development Award to support
applied research, help companies explore quantum applications, generate startups, and
prepare a skilled workforce.
Industry partners are key to the QuantumCT Engine’s success. Quantinuum and D-Wave
are partnering to develop quantum computing testbeds with QuantumCT that will be used
for experimentation and technology translation activities.
Quantum technology adopters – including RTX, Travelers, Boehringer Ingelheim, Pfizer,
Amphenol, and Microsoft – have been working with the QuantumCT Engine team over the
past several years on applied research projects that bring quantum capabilities directly to
their product lines.
“With this transformative award, NSF has recognized the scale of the QuantumCT Engine’s
ambition and its potential to accelerate the quantum revolution for our state, region, and
the United States as a whole,” Yale University President Maurie McInnis says.
“I am so proud of this effort to develop real-world solutions that enrich our communities
and of the spirit of collaboration that it represents,” she adds. “Together with our partners at
UConn and across the state, we have been able to drive innovation and unleash economic
growth, while fulfilling Yale’s vital mission of research and education.”
Alongside industry partnerships and state support, sustained investments by UConn and
Yale have helped build the quantum ecosystem that this award will accelerate.
At Yale, this includes startups such as Quantum Circuits, co-founded by Robert Schoelkopf
and Michel Devoret — whose pioneering work in quantum computing earned him the 2025
Nobel Prize in Physics — and recently acquired by tech innovator D-Wave with plans to
double its workforce in New Haven.
Southern Connecticut State University (SCSU) also plays a critical role as the QuantumCT
Engine’s workforce lead, with its QNT (CSCU Center for Quantum and Nanotechnology)
serving as the optimal coordinator based on its successes in leading educational initiatives
and strong alliances with industry, community stakeholders, and IHEs throughout
Connecticut.
Through longstanding technical and education collaborations with Yale, UConn, and the CT
State Community College System, the QNT is a conduit to all academic institutions in the
state and to small and medium businesses including those in advanced manufacturing,
biotech, photonics, and other supply chain sectors.
“Southern Connecticut State University is more than ready to take the lead on workforce
development in Connecticut’s quantum ecosystem,” says Sandra Bulmer, interim
president of the university. “We are proud to be part of Connecticut’s ‘research triangle,’
along with Yale and UConn, serving as the support for the talent pipeline. Our mission is
grounded in access and opportunity, and the workforce piece of this effort enables us to
open up new frontiers in research and innovation to countless students across
Connecticut.”

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