UConn Departments Collaborate to Enhance Quantum Science Education for Connecticut Students

Faculty from the departments of Chemistry, Curriculum & Instruction, and Digital Media and Design host professional development for K-12 teachers

If you have recently shopped for a new TV, did you wonder what the Q means in QLED? It stands for quantum, or the behavior of particles at the smallest scales, and it’s just one of the many ways a new era of quantum-based technology is revolutionizing everyday life.

However, most of the knowledge surrounding quantum science is understood and studied in college-level classrooms or by researchers. So, there is an immediate need to bring quantum instruction to high school chemistry classrooms, not only to cultivate the next generation of innovators in this area but also to educate all citizens about the current and future impacts of quantum on their lives.

Earlier this summer, faculty from UConn’s departments of Chemistry, Curriculum and Instruction, and Digital Media and Design hosted three days of professional development for high school chemistry educators, with the goal of creating new K-12 curriculum that teaches quantum chemistry concepts. The hope is for the new curriculum to eventually be used across the state and possibly nationwide.

Clyde Cady of the Department of Chemistry was one of the UConn faculty members who led a three-day quantum science workshop for high school chemistry teachers in June. (Shawn Kornegay/Neag School photo)

“Professors possess enthusiasm about and knowledge of quantum concepts, while high school chemistry teachers possess knowledge of student-centered pedagogical strategies needed to support K-12 learners,” wrote Clyde Cady and Fatma Selampinar of the Department of Chemistry and Todd Campbell of the Department of Curriculum and Instruction in their grant proposal to support the project.

The three-day workshop was only the first step in their work, which is part of the larger QuantumCT partnership between UConn and Yale striving to make Connecticut “a leading hub for quantum technologies.” In late June, educators from around the state arrived in Storrs, where they spent their first day learning an overview of quantum science and its importance. They also toured different campus labs to view quantum dots using a microscope, and learning more about lasers and photochemistry; transmission electron microscopy (TEM); and scanning electron microscopy.

Day Two was dedicated to exploring and improving K-12 curriculum based on these topics. This was a highly collaborative effort, drawing on the UConn faculty’s expertise but also that of the high school teachers.

“We propose to focus on the teaching of atomic structure in general chemistry,” Cady, Selampinar, and Campbell said. “This topic already includes teaching quantum topics such as quantum numbers, electron orbital shapes and hybridization, and molecular orbital theory. These topics are the entry point to quantum mechanics but are often difficult to teach.”

To help with this, Jihyun An-Chakrin, a Ph.D. student in Curriculum and Instruction, collaborated with Campbell, Cady, and Selampinar to develop phenomenon-based curriculum that could anchor teacher professional learning experiences and collaborative refinement.

The third and final day of the QuantumCT workshop in June was dedicated to helping the high school teachers visualize quantum concepts using virtual reality technology. (Submitted photo)

The third and final day was dedicated to helping the high school teachers visualize quantum concepts using virtual reality technology, so they in turn can help students do so as well. Cady, Selampinar, and Campbell note that most educators find it extremely hard to teach quantum science because the field is based on objects so small that you can’t touch, feel, or in any way easily interact with them – so, traditional teaching methods rely on mathematical equations. That’s where the work of Tomoyasu Mani and Jing Zhao of the Department of Chemistry and Ting Zhou of the Department of Digital Media and Design comes in.

“Visualization generally helps students learn concepts most effectively,” the three wrote in their project proposal. “VR can enhance the students’ engagement and interests during the learning process by enabling students to interact with 3D objects and improve their comprehension of challenging topics. … VR will help us create an interactive and immersive environment that connects the key phenomena/technologies and quantum concepts without excessively focusing on equations.”

Their first VR game focuses on Quantum Dots and their synthesis. Danial Ezzati, an MFA student in digital media design, collaborated with Mani, Zhao, and Zhou to develop this VR game.

In addition to VR learning, the team – named QuanXR – is also working to develop hands-on experiments and kits that help students visualize quantum theory. One of the kits is a series of quantum dots used in the Day Two activity. They are building a user-friendly website featuring the mascot “Qutie,” along with illustrations, animations, and films, to connect quantum concepts to real life. These can be used in tandem with the VR modules or alone, allowing more educators to utilize them even if their school or district doesn’t have access to VR equipment.

With the professional development workshop complete, both research teams hope to finalize their respective educational materials – curriculum guides, student worksheets, and other instructional materials for Cady, Selampinar, and Campbell, and the VR modules, hands-on experiments, and a website to distribute them all for Mani, Zhao, and Zhou – and support teachers who attended the workshop to test them in classrooms across the state. Feedback from teachers and students will continue to be crucial in these phases of the projects.

The materials were developed in alignment with the Next Generation Science Standard (NGSS), which are K-12 content standards that emphasize engaging learners in explaining things that happen in the world or solving problems of societal consequence and have been adopted either completely or partially by most of the states in the U.S.

“By developing curricular resources… we will not only improve how quantum science is taught in Connecticut but also in more than 40 other states [that have adopted or developed standards that have been adapted from the NGSS],” Cady, Selampinar, and Campbell say.

Mikala Kane | 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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