A New Kind of Entanglement Helps Quantum Sensors Tune Out Noise

In a quest to build the most accurate sensors in the world, scientists are constantly improving their performance. Making them more precise, stable and reliable. Photon exchange through an optical cavity links two atomic ensembles, creating a shared entangled state. This entanglement is designed to be insensitive to common noise while remaining highly sensitive to differential signals. (Credit: Raphael Kaubruegger, JILA)Photon exchange through an optical cavity links two atomic ensembles, creating a shared entangled state. This entanglement is designed to be insensitive to common noise while remaining highly sensitive to differential signals. (Credit: Raphael Kaubruegger, JILA)

But eventually, physical constraints will prevent further improvements. 

“By fully embracing the laws of quantum physics, one can expand the performance limits imposed by these constraints,” says JQI Fellow Alexey Gorshkov, who is also a Physicist at the National Institute of Standards and Technology (NIST), a Fellow of the Joint Center for Quantum Information and Computer Science and an Associate Professor in the Department of Physics at the University of Maryland. “And it's very exciting to come up with protocols that come as close as possible to saturating these limits for different sensing tasks.”

Even the most precise sensors in the world are not fully isolated and are limited by noise—subtle disturbances from the environment like vibrations, electromagnetic fields or temperature changes. 

So, Gorshkov, JILA Fellows Ana Maria Rey and James K. Thompson and their colleagues from the Niels Bohr Institute and the Indian Institute of Technology Madras, asked, how can we improve the next generation of sensors despite these limitations? 

One promising idea is to use quantum entanglement, so atoms are connected to each other and working together as a system to form a quantum sensor. When atoms are entangled, they share properties even when separated by distance. In principle, this allows for more precise measurements. But entangled atoms are still subject to noise. “Entangled states are well understood for estimating a single parameter, but our goal was to create an entangled state that is highly sensitive to a parameter difference between two nodes of a sensor network,” says Raphael Kaubruegger, a research associate at JILA and the lead author of the article. 

The researchers set out to identify a new class of entangled states that could filter out noise affecting both sensors. They then developed two ways to create these states inside an optical cavity, a pair of mirrors about one inch apart that bounce photons back and forth. They describe the state and two methods to create it in a recent paper published in Physical Review X

The entangled state they identified uses decoherence-free subspaces which are protected from certain types of disturbances to quiet noise affecting both sensors. 

Lasers are used to create coherent superposition between two internal states of an atom, but to accomplish that, the laser’s frequency needs to exactly match the atomic transition. 

The challenge, as Rey explains, is that even the most precise lasers cannot maintain a stable frequency for long enough. These laser frequency instabilities generate noise which is equally experienced by both sensors and is currently one of the most detrimental errors in state-of-the-art clocks. “Ideally, one would like to prepare the atoms in a state that is insensitive to this type of noise,” says Rey, who is also a NIST fellow and professor adjoint of physics at the University of Colorado Boulder. 

“The state we create is entanglement between these atoms, but in a way that you cannot distinguish which atom is in which ensemble,” Rey says. “They are fully symmetrized.” 

“After the fact, we realized this was the same kind of state people were thinking about to describe antiferromagnets, or quantum magnets,” says Thompson, who is also NIST fellow and professor adjoint of physics at the University of Colorado Boulder. 

In condensed matter physics, the Lieb-Mattis state describes a quantum version of an antiferromagnet, where two groups of atoms act like they point in opposite directions, but without the system picking one fixed direction in space. 

One method the team developed to prepare the desired state involves entangling two nodes of a sensor network by engineering a “spin exchange,” by having the atoms send photons back and forth through an optical cavity. This leads to a state where each atom in one node is perfectly anticorrelated with an atom in the other. If one atom is “up,” the other atom is “down.” 

Thompson likens this approach to baseball, where each ensemble is a baseball team. The teams are throwing balls, or in this case photons, to each other. Every time a ball is thrown, the other team catches it. Thompson adds that it’s important that we don’t know which player threw the ball or who caught it. 

“That’s what builds these links,” Thompson says. “If a ball is thrown, it is definitely caught.” 

The approach produces Heisenberg scaling, or the best possible precision scaling where all the atoms act as one quantum object. 

Optical cavities are not perfect. As Rey explains, sometimes you may lose a photon. The team’s second approach takes this into account. 

Inside the optical cavity, photons can bounce back and forth between very reflective mirrors about 100,000 times before they accidentally slip through to the other side. 

“We are losing photons, but the important part is that the photons are lost in a collective way,” Rey says. 

Because it’s impossible to tell which atom is to blame, this can create entanglement—driving them into a state where they cannot lose more photons. 

“At some point they get really good at not dropping the ball anymore,” Thompson says. 

“They go into a ‘dark state,’ or a state where the phases of the emitted photons completely cancel out, leading to what it is known as destructive interference,” Rey adds. 

The team was initially trying to understand the detrimental effect of losing those photons. But as Rey explains, ultimately this type of dissipation actually led them to a state they wanted. 

“The state we initially wanted to prepare was one in which half the atoms are excited, but the system cannot collectively emit a photon,” Kaubruegger adds. 

The team’s proposed states can be created quickly, and more importantly, faster as the system gets larger, making them practical for scaling quantum sensors. 

“People have thought about this kind of state when you only have two atoms, which is cool, but you’d like to use more,” Thompson says. “It turns out, the more atoms you have, the better!” 

By making quantum sensors more precise, these entangled states could one day help guide navigation when GPS is unavailable or reveal hidden underground resources such as minerals, oil or gas. 

Close collaborations between theorists and experimentalists have been key to this work. The groups inspire each other—and keep each other in check. Because they work so closely together, Kaubruegger says they have a deeper understanding of the challenges experimentalists face. 

And now, the ball, so to speak, is in Thompson’s group’s hands; to demonstrate the state in experiment.

This text has been adapted with permission from a story written by Kirsten Apodaca and originally published by JILA. It has been adapted with minor changes here.

 

Lepton Flavor Universality Tests Using Bc+ Decays at LHCb

UMD graduate student Emily Jiang delivered a CERN seminar on May 19, 2026, unveiling an important new result on studies of Lepton Flavor Universality using decays of the heaviest B meson, Bc+, which has quark contents of a bottom-quark and anti-charm quark.   

The result is primarily the work of Jiang, UMD alumnus Zishuo Yang (Ph.D., 2023), Phoebe Hamilton and Hassan Jawahery, members of the Large Hadron Collider beauty experiment (LHCb) at CERN in Geneva, Switzerland.  It was a seven-year effort undertaken while the UMD group was also working on the development and construction of the new LHCb detector.LHCbLHCb

These results are of significant interest in the field because they show deviation from the Standard Model predictions. Previous measurements of similar quantities using the light B mesons from the BaBar experiment at SLAC, Belle Experiment at the KEK laboratory in Japan and the LHCb experiment at CERN are also in tension with the Standard Model. The new results show a similar trend, reinforcing the effect and has been highly anticipated in the field.

Jiang’s presentation can be seen here: https://indico.cern.ch/event/1685950/attachments/3277204/5855756/26-04-23_ejiang_CERN_seminar.pdf

For further information:

https://bolek.web.cern.ch/RJpsi/

https://lhcb-outreach.web.cern.ch/2026/05/19/lepton-flavor-universality-tests-using-bc-decays-at-lhcb/

Childhood Physics Fun Leads to Twin PhDs

When Sylvester James Gates III (B.S. ’15, biological sciences) graduates from the University of Maryland with his Ph.D. in biological sciences this month, it will be a family affair—and a homecoming. 

Sylvester grew up near College Park. His father, Distinguished University Professor of Physics Sylvester James Gates Jr., who goes by Jim, holds the Clark Leadership Chair in Science and has been at UMD since 1984. As kids, Sylvester and his twin, Delilah Gates (B.S. ’15, physics; B.S. ’15, mathematics), spent their free days with their dad in the John S. Toll Physics BuildingThe Gates family after Sylvester's graduation. From left: Sylvester James Gates Jr., Sylvester James Gates III, Delilah Gates, Dianna Abney. Photo courtesy of Sylvester James Gates III.The Gates family after Sylvester's graduation. From left: Sylvester James Gates Jr., Sylvester James Gates III, Delilah Gates, Dianna Abney. Photo courtesy of Sylvester James Gates III.

“The university always felt like a second home to me,” Sylvester said. 

So it was no surprise that both twins chose to stay in College Park for their bachelor’s degrees and they both became scientists. 

After graduating from UMD, Delilah earned her Ph.D. in physics from Harvard University in 2021, where she studied black holes in space. She completed a Future Faculty in the Physical Sciences Fellowship at Princeton University and then returned to Harvard as a postdoctoral fellow at the Center for Astrophysics | Harvard & Smithsonian and a member of the Black Hole Initiative. 

Sylvester, meanwhile, spent a brief stint in graduate school at Duke University before returning to Maryland for his Ph.D., where he studied how brain cells communicate. Working with Physics Professor Wolfgang Losert, Sylvester’s Ph.D. research developed new, nontraditional ways to measure brain cell activity—for example, by monitoring ions, stress compounds and the cell’s internal skeleton. He argues that gaining a more holistic picture of how the brain works could lead to more powerful artificial neural networks for computing and better drug discovery for brain diseases. 

When Sylvester presented this work during his dissertation defense in April, his whole family came to campus to watch. This month, they’ll return once more to cheer him on as he walks across the graduation stage. The milestone marks the end of a challenging but rewarding graduate school journey. 

“I'm incredibly proud of Sylvester,” Delilah said. “He's an amazing guy, as both a scientist and a human.”

Two Science Terps Are Born

What exactly does a kid do when they’re dragged into a university physics building? Actually, quite a lot, Sylvester and Delilah said. 

They have fond childhood memories of playing with physics demonstrations, mingling with employees and learning Japanese from a department staff member. Delilah even recalls playing physicist—much like many kids play doctor—scribbling gibberish on her dad’s blackboard and notepads as she pretended to do complex calculations. 

In many ways, the twins took after their parents. Their mother, Dianna Abney, is a pediatrician, child abuse specialist and the health officer for Charles County, Maryland. Like the kids, one of their parents studies physics, and the other is in the life sciences. Still, neither kid felt pressured by their parents to be scientists. In fact, both twins played the clarinet and considered majoring in music at UMD. 

“Though I have been deeply passionate about reaching my wish of becoming a scientist starting at age 4—as is similar to the case of my wife, Dianna, whose wish to become a medical doctor began around age 8—we shared a belief that parents should provide a safe environment with some structure, but stay out of the children's lanes of determining their lives' ambitions,” Jim said. 

That’s not to say Jim and Dianna did not influence their children’s careers at all. They were friends with other doctors, professors, lawyers and people with advanced degrees. Being around them helped the twins understand what went into pursuing those career paths, Delilah said. And, they were always invited to chat with the adults. 

“A lot of things that some people might think are hard discussions about science, the universe, planets, biology and medicine were commonplace, because that's just the language my mom and dad spoke,” Sylvester said. 

He added that representation was important. 

“It never felt like science was unapproachable to me,” Sylvester said. “This is one of the reasons why I believe that representation matters. Having a father and mother who were, respectively, a physicist and a pediatrician, both doctors in their own right, made being a doctor seem like something that my sister and I could do.”

Diverging Disciplines

Now that they’re both scientists, the twins study the world on vastly different scales—Sylvester works on microscopic cells, while Delilah researches the vast cosmos. The two siblings always had distinct dispositions, Sylvester said. He was always more artsy, and his sister was more drawn to math. So, he’s not surprised their interests diverged. 

Delilah initially planned to study particle physics like her father, but after taking a cosmology class in graduate school, she became fascinated by black holes. She was drawn to the discipline’s strong mathematical framework, which, like particle physics, builds on concepts like field theory and general relativity. Now, as a theoretical physicist, she’s developing new ways to measure the spin of black holes—a question that has vast implications for understanding how galaxies form and evolve.  

As for Sylvester, when he went to Duke University, he was planning to study cancer for his Ph.D. But living away from Maryland for the first time, he experienced culture shock—from the slower pace of life and the distance from the community he had spent two decades developing. For a year and a half, he struggled with his mental health and imposter syndrome. 

“Then, I was like, ‘I cannot do graduate school at this point in time,’” Sylvester said. “So I came back to Maryland. Thankfully, I had great support, so I was able to rebuild my scientific confidence.” 

Growing Together by Moving Apart

It was difficult for Delilah to watch her twin struggle, but ultimately, it brought them closer. Until that point in their lives, they had lived close enough to see each other and speak regularly. But they had to learn to be there for each other now that they lived hundreds of miles apart. 

“Him having struggled taught us how to support each other in a new way,” Delilah said. “It was difficult at first learning to be in different places and on different timelines, but it taught us a new way to communicate and connect.” 

The Gates family in 2015.The Gates family in 2015.When Delilah faced her own challenges about halfway through graduate school, that bond was invaluable.

“I always say I don't think I'll have a midlife crisis because I went through graduate school. I was struggling quite a lot. I was having severe anxiety. And it was to the point I would cry every day, sometimes several times a day,” she said. “I remember I used to call Sylvester most mornings and talk to him on the way to work, because talking to him made me less anxious.”

After supporting each other through tough times, the twins are closer than ever. They’re best friends and speak every day, whether that’s through text messages, phone calls or wordless exchanges of memes. After watching Sylvester bounce back from his struggles, Delilah was overjoyed as she watched her brother finally defend his Ph.D. It was her first time watching him deliver a scientific lecture, and she noted how calm, cool and collected he was—and also how well-dressed. 

“He's so much more fashionable than me,” she said with a laugh. “He looked really sharp.”

Delilah got emotional as she recounted the day’s events. 

“I was the last one he shouted out in detail in his acknowledgments, and I just bawled. I couldn't contain my joy and pride. I was so happy for him,” she said. “Even thinking about it now, I get a little verklempt.” 

Their father felt the same way. 

“It would take me writing a magnum opus to really express my feelings in the defense,” Jim said.

Now that he’s completed his Ph.D., Sylvester is still figuring out what’s next. He’s open to academia, or maybe a career in government or industry. Wherever he lands, he wants to continue studying how the brain works, whether that means developing artificial neural networks for computing, medicines for neurodegenerative diseases like Alzheimer’s or interventions to help military veterans dealing with brain trauma. 

And although the twins’ physics professor dad never pushed either child to pursue science, he’s thrilled by their accomplishments now that they have chosen the path for themselves. 

“Raising them was amazing. My wife and I still say that there is nothing else in life that we have done that was more fun,” Jim said. 

It’s hard for him to find the words to describe how he feels witnessing his children’s success. So, he turns to something of a family heirloom—cherished words his father once shared with him. 

“After I became the John S. Toll Professor of Physics, my father said to me, ‘You have exceeded any and all expectations that your mother, Charlie, and I ever had of and for you,” Jim said. “My twins have accomplished that also for their parents.”

Barkeshli Selected for Frontiers of Science Award

Research by Professor Maissam Barkeshli and colleagues has been selected by the International Congress of Basic Science (ICBS) as a recipient of the 2026 Frontiers of Science Award in Condensed Matter Physics. The paper cited was Symmetry fractionalization, defects, and gauging of topological phases by Barkeshli, Parsa Bonderson, Meng Cheng and Zhenghan Wang.Maissam BarkeshliMaissam Barkeshli

The Frontiers of Science Award, inaugurated in 2023 under the auspices of the ICBS, honors recent papers recognized for a major breakthrough in their respective fields and includes a nomination process and review by a panel of experts.

Awards will be presented at the International Congress of Basic Science in Beijing on August 9, 2026. 

Barkeshli has also received a Sloan Fellowship and an NSF Career Award, and was recently selected for a Simons Collaboration