Quantum Seed Grants Are Funding Solutions to Real-World Problems

‘We are realizing a faster pace of quantum innovation—and advancing our state’s role as a leader in quantum science and technology’

What do underwater navigation, drug safety, and air traffic control have in common? Each creates challenges that quantum science and technology could solve.  

In Connecticut, the unique public-private partnership QuantumCT is accelerating research to meet those challenges head on—and to position Connecticut as a global quantum technology hub.   

As of this spring, nine Connecticut-based research groups have received one-year seed grants for exploratory quantum projects. Each project aims to tackle a “challenge problem” issued by corporate partners in the state, like the need to develop algorithms that simulate molecular drug actions in the body, or to invent exquisitely accurate but hardy sensors that work in extreme environments with little power.  

In other words, the projects are directly relevant to Connecticut industries, including aerospace, biotech, and life sciences. This practical approach to science is called use-inspired research.  

“These grants are fertilizing creative, potentially transformative projects in quantum science and technology across several key industries, all of which are central to Connecticut’s present and future economy,” says Michael Crair, Vice Provost for Research and William Ziegler III Professor of Neuroscience and Professor of Ophthalmology and Visual Science at Yale University.

The seed grants are funded by the University of Connecticut and Yale University and distributed via QuantumCT. Research results will help QuantumCT plan long-term research eligible for competitive funding through the National Science Foundation’s Regional Innovation Engines (a program established through the 2022 CHIPS and Science Act).  

The aim of QuantumCT is to make Connecticut a global destination for quantum education, job training and equitable job growth, research innovation, and industry excellence. 

“Because large universities and industry in Connecticut have joined forces, sharing resources and expertise under the QuantumCT umbrella, we are realizing a faster pace of quantum innovation—and advancing our state’s role as a leader in quantum science and technology,” says Pamir Alpay, Vice President for Research, Innovation, and Entrepreneurship and Board of Trustees Distinguished Professor of Materials Science and Engineering at the University of Connecticut. “The seed grants will fuel not only quantum discovery but also career opportunities in a high-demand STEM field.”  

Each project is collaborative, bringing together researchers from UConn, Yale, and industry partners.  

“The projects foster interactions among a range of researchers from faculty to students to industry scientists, allowing them to pool their knowledge and creativity at top-of-the-line laboratory facilities in Connecticut,” Alpay notes. “These collaborations also offer rising quantum scientists a look at potential career paths in industry.” 

Advanced sensing

Airplanes, ships, and other vehicles rely on sensors for accurate navigation. But current sensor technologies have important limitations, and five of the project teams are working to develop better ones.  

In one, led by Charles Ahn and Alexander Balatsky—physics professors at Yale and UConn, respectively—the aim is to develop a robust, highly sensitive radiofrequency (RF) sensor that outperforms state-of-the-art directional sensors. To do this, the team is studying how electromagnetic waves interact with atom-sized magnets.  

“We incorporate magnetic atoms on thin films on the nanoscale,” says Dung Vu, a Yale postdoctoral associate on the team, which also includes collaborators from RTX Technology Research Center (RTRC), the research arm of RTX and its three businesses Collins Aerospace, Pratt & Whitney, and Raytheon.  

“By changing properties such as energy and polarization of the light we shine on to the film, we can manipulate the quantum magnet’s properties, then measure the change of the magnetic field around them when they interact with light,” Vu says.  

The devices, Vu explains, can be used to make RF sensors that may be useful for airborne and autonomous vehicles. 

Another team is developing innovative fiber sensors for a magnetic-aided inertial navigation unit for a global navigation satellite system (GNSS). With its extraordinary sensitivity, this technology is designed to operate in environments like the deep ocean and underground, where GNSS signals can be jammed, spoofed, or otherwise unreliable. Electrical engineers Faquir Jain and John Chandy of UConn and Fengnian Xia of Yale are behind that effort. 

“The sensor can detect ultra-low magnetic fields that help with navigation with very low power consumption and cost,” Jain says. 

A key challenge for next-generation magnetic sensors is to limit the devices’ SWaP (size, weight, and power consumption). Currently, the best ones require supercooled liquid helium. A seed project by assistant professors Yu He of Yale (applied physics) and Pavel Volkov of UConn (engineering) is pursuing sensors cooled with liquid nitrogen—a much more user-friendly substance.  

“The results will form one pillar for the eventual theory-experiment-industry collaboration,” Volkov says. 

Highly accurate sensors are vulnerable to miniscule errors and noise in the data. A team led by Yale engineering professor Hong Tang is building ultra-thin silicon nitride microwheels to create a tough, low-SWaP sensor whose round shape is designed to reduce error.  

Meanwhile, Yale associate professor of physics and applied physics Peter Rakich is developing a technique to attach microscopic mirrors to the end of silica fibers, creating a tiny, high-finesse device called a resonator. This resonator should allow precise control of quantum particles, like the ability to couple light particles with ions. That could advance not only sensors, but also quantum computers and networking.

Computing revolutions

With quantum technologies poised to revolutionize computing, many industries stand to benefit. 

Quantum entanglement, the eerie phenomenon by which two particles are linked as if they were one, is central to quantum computing and a major reason why the technology is expected to deliver vast improvements. In fact, entanglement can be considered a key resource in quantum computing, and as with any resource, there are better and worse ways of distributing it. Leandros Tassiulas and Shan Zuo, electrical engineering faculty at Yale and UConn, respectively, are studying how quantum computing systems can generate entanglement across multiple users in an equitable way.  

Air traffic controllers, delivery route planners, and factory managers are among the many workers who face optimization problems: how to make actions most efficient. But optimization problems can be fiendishly difficult to solve, especially where there are hard constraints like the need for airplanes to avoid no-fly zones, trucks to refuel, or machines to complete tasks in a certain order. Like classical computers, quantum computers can use heuristics to tackle optimization problems—which remain extremely challenging to solve.  

A joint Yale-UConn team led by Yale physics professor Steven Girvin is exploring whether new algorithms could help quantum computers handle hard constraints on optimization problems. The research should also have relevance to problems like portfolio optimization and risk assessment that frequently arise in domains like finance and insurance, supply-chain logistics, and flight route planning, according to Amit Surana, an RTRC researcher working with the team.  

“The value proposition is that even slight improvements to logistics, even by half a percent, can mean huge savings,” Surana says.

Progress in life sciences

Computing is also a focus of two teams led by Yale chemistry faculty members Victor Batista and Tianyu Zhu, which are exploring quantum solutions to problems in drug development.  

One complex challenge researchers face is efficiently identifying drugs that will bind tightly to the intended receptor. Zhu and Batista, with partners at UConn, including physics professor Lea Ferreira Dos Santos and representatives of Mirion Technologies and Boehringer Ingelheim, are developing algorithms that run on quantum computers to tackle this task. 

Drug safety, too, might be improved by quantum computing. New drugs must be rigorously checked for possible toxic side effects on the heart, liver, and immune system. As part of a de-emphasis on animal testing, the industry has been studying the use of classical computing tools like machine learning and artificial intelligence to evaluate possible side effects. But quantum computing techniques remain relatively unexplored.  

So, another group working with Zhu and Batista is developing algorithms that use toxicology data to predict the safety of drug candidates. They are studying a hybrid approach in which a classical computer does a first check for toxicity, then drug candidates that pass that test undergo a further check by a quantum algorithm. Such a hybrid quantum-classical approach is a new and potentially highly effective way to do AI. Project partners include UConn professor Bodhisattva Chaudhuri and researchers with Novartis and Pfizer. 

With this method, says Anthony Smaldone, a graduate student in the Batista lab, “we can remove drugs that are highly likely to fail in testing. Then we don’t have to rely on animal testing so heavily.” 

The hybrid method allows for tinkering that should help researchers determine where quantum computers offer efficiency gains, Smaldone explains. 

“We can slowly change our hybrid models, taking out classical components and putting quantum components in, and see what works and what doesn’t,” he says. “Hopefully, as we’re putting in these quantum components, we can start to see quantum advantages in doing so.”  

Currently, Smaldone says, the team is working with simulations only. Real-world success will have to wait for certain types of hardware and algorithms to catch up. “But this shows the first theoretical framework to do this efficiently,” he says.

Jenny Blair | 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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