Sunday, May 31, 2026

 

Using a single atom as a “camera” - visualization of light intensity and polarization beyond the resolution limit of optical microscopes -




National Institutes of Natural Sciences
Conceptual illustration of the Atom Camera. A single ultracold rubidium (Rb) atom trapped in an optical tweezer is spatially scanned to visualize the intensity and polarization distributions of a light pattern. 

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Conceptual illustration of the Atom Camera. A single ultracold rubidium (Rb) atom trapped in an optical tweezer is spatially scanned to visualize the intensity and polarization distributions of a light pattern.

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Credit: Takafumi Tomita





【Main points】

  • The team developed a new optical measurement technique, "Atom Camera," using a single ultracold atom at near absolute zero temperature as a camera.
  • The technique visualizes not only light intensity distributions but also polarization distributions with a high spatial resolution below 100 nanometers.
  • The method is expected to be useful in quantum computing and other emerging quantum technologies.

【Outline】

A research group led by Assistant Professor Takafumi Tomita and Professor Kenji Ohmori at the Institute for Molecular Science, National Institutes of Natural Sciences, has developed a new microscopy technique called the "Atom Camera," which uses a single ultracold atom at near absolute zero temperature*1 trapped in an optical tweezer*2 as a camera to visualize the intensity and polarization*3 distributions of light at the nanometer (one-millionth of a millimeter) scale.

In this study, a single atom trapped by an optical tweezer was successfully utilized as a scanning probe*4 for imaging the fine structures of intensity and polarization distributions of light patterns with a spatial resolution beyond the diffraction limit*5 of conventional optical microscopes.

The results were published in the online edition of the British scientific journal Nature Communications on May 29th, 2026.

1. Research background

In recent years, quantum computers and other quantum technologies have been rapidly advancing worldwide. Precise control of finely structured light fields widely used in such quantum technologies is critically important. In particular, laser light is one of the primary tools for controlling quantum states of matter, exemplified by the arrays of microscopic light spots and lattice-shaped light patterns created by lasers playing central roles in operating neutral-atom quantum computers*6.

To properly control such finely structured laser fields generated by optical devices, it is necessary to directly observe the light patterns formed inside quantum devices such as vacuum chambers. However, it is difficult to place diagnostic cameras inside vacuum chambers without affecting qubits, which are highly sensitive to environmental noises. In addition, when light is observed remotely through lenses, aberrations*7 introduced by those lenses themselves are most likely to distort the measured light patterns.

2. Research results

The researchers used a single rubidium*8 atom trapped in an optical tweezer as a probe. By spatially scanning the atom position with nanometer-scale (one-millionth of a millimeter) precision and measuring the energy shifts of its internal spin states, they obtained local information about the light field at each atom position. From the measured energy shifts as a function of the atom position, the intensity distribution of the light was successfully visualized (Fig. 2).

Furthermore, the researchers focused on the fact that the spin-dependent energy shift depends not only on light intensity, but also on light polarization. Utilizing this property, they successfully visualized polarization distributions directly. As a demonstration of this technique for polarization imaging, they observed a non-trivial polarization structure appearing in a tightly focused laser beam confined within a spatial extent approximately 1 micrometer (one-thousandth of a millimeter) wide. It is known that even a simple linearly polarized laser beam acquires circular polarization structures near the focal point after passing through a lens. The Atom Camera directly visualized this non-trivial polarization structure (Fig. 2).

The probe atom used in this method was cooled down with a method called laser cooling*9 to the lowest quantum-mechanical motional state achievable inside the optical tweezer. The spatial resolution of the probe is fundamentally determined by the quantum-mechanical positional fluctuation of a single atom, which was approximately 25 nanometers under the present experimental conditions. The researchers experimentally demonstrated a spatial resolution below 100 nanometers, significantly surpassing the diffraction limit of conventional optical microscopy.

3. Future development and social significance of this research

The Atom Camera developed in this study provides a new measurement technique for directly observing nanoscale optical structures that have been difficult to access by conventional methods.

Techniques capable of precisely characterizing microscopic light fields are expected to be useful for emerging neutral-atom quantum computers and simulators*10 in characterizing and controlling the structures of laser fields used to manipulate atoms. In particular, because the behavior of atomic qubits depends not only on laser intensity, but also on laser polarization, the ability to simultaneously measure both of them makes this method a powerful diagnostic tool.

4. Terminology

1* Optical Tweezer

A technique that traps microscopic particles using tightly focused laser light. Invented by Arthur Ashkin in the 1970s, optical tweezers can trap individual atoms by attracting them toward the brightest region of the focused laser beam.

2* Absolute Zero Temperature

The temperature at which atomic and molecular motion reaches its minimum possible value. This temperature is defined as 0 Kelvin, corresponding to −273.15°C.

3* Polarization

A property describing the oscillation direction of light waves. Light can oscillate in a fixed direction (linear polarization) or rotate while propagating (circular polarization). In this study, the researchers visualized distributions of circular polarization.

4* Probe

A sensor or detection element used to investigate a target system. In this study, a single atom itself was used as the probe to obtain local information about the light field.

5* Diffraction Limit

Because light behaves as a wave, conventional optical microscopes cannot clearly resolve structures smaller than approximately the wavelength of light. This fundamental resolution limit is called the diffraction limit.

6* Neutral-Atom Quantum Computer

A modality of quantum computing hardware that uses neutral atoms trapped and arranged in space by optical tweezers as quantum bits (qubits). This approach has rapidly been attracting worldwide attention because it offers several advantages, including room-temperature operation, flexible atom transport, scalability, and long coherence times.

7* Aberration

A phenomenon in which light passing through a lens fails to focus ideally, causing image blur or distortion in optical systems such as cameras and microscopes.

8* Rubidium Atom

An alkali metal atom with atomic number 37. It has one electron in the 5th orbital (5s) around the nucleus.

9* Laser Cooling

A technique that uses laser light to reduce the motion of atoms and cool them to extremely low temperatures. By suppressing the thermal motion of atoms, laser cooling enables high-precision quantum control and precision measurements.

10* Neutral-Atom Quantum Simulator

A device that artificially arranges neutral atoms trapped by laser light and uses their quantum interactions to emulate complex quantum phenomena such as magnetism and correlated electron systems, which are difficult to calculate using conventional computers.

5. Publication Information

Journal: Nature Communications
Title: "Atom Camera: Super-resolution scanning microscope of a light pattern with a single ultracold atom"
Authors: Takafumi Tomita, Yuki Torii Chew, Rene Alejandro Villela, Tirumalasetty Panduranga Mahesh, Hiroto Sakai, Keisuke Nishimura, Taro Ando, Sylvain de Léséleuc, and K. Ohmori
Published online: May 29th, 2026
DOI: 10.1038/s41467-026-73348-x

6. Research Institutions

  • Institute for Molecular Science, National Institutes of Natural Sciences
  • Hamamatsu Photonics Central Research Laboratory
  • RIKEN

7. Funding

This work was granted by MEXT Quantum Leap Flagship Program (MEXT Q-LEAP) JPMXS0118069021, JSPS Grant-in-Aid for Specially Promoted Research Grant No. 16H06289, JSPS Grant-in-Aid for Research Activity Start-up No. 19K23431, JSPS Grant-in-Aid for Transformative Research Areas No. 22H05267, and JST Moonshot R&D Program Grant Number JPMJMS2269.

8. Related links:

• Kenji Ohmori group: https://ohmori.ims.ac.jp/en/

 

Ultrasound-guided endoscopic retrieval of a deeply embedded cervical fish bone after failed open exploration: A minimally invasive salvage technique




Higher Education Press
Figure 1 

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 Imaging evaluation

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Credit: HIGHER EDUCATON PRESS





Clinical management of cervical fish bone foreign bodies faces difficulties including missed diagnosis, invasive exploration, and high complication risks. Deeply embedded foreign bodies invisible under endoscopy often elude open surgery, leading to persistent symptoms, fistula, and infection, while conventional imaging has limitations in real-time and soft-tissue localization.

Zhangfeng Wang et al reported a case in ENT Discovery describing a minimally invasive salvage technique for refractory cervical fish bones. They used ultrasound-guided endoscopic retrieval after failed open exploration and assessed its safety and efficacy. The 27-mm foreign body was precisely located and successfully removed, with symptom relief and complete fistula healing. This method provides real-time navigation, no radiation, minimal trauma, and higher accuracy.

This study advances otorhinolaryngology by establishing a safe rescue strategy for difficult foreign bodies. It provides a practical reference for treating deeply embedded pharyngeal foreign bodies and supports the development of more minimally invasive and precise clinical protocols. The work entitled “Ultrasound-Guided Endoscopic Retrieval of a Deeply Embedded Cervical Fish Bone After Failed Open Exploration: A Minimally Invasive Salvage Technique” was published on ENT Discovery (published on Apr. 01, 2026). Reference: Hang Li, Lin Chen, Wenbin Lei, Zhangfeng Wang. Ultrasound-Guided Endoscopic Retrieval of a Deeply Embedded Cervical Fish Bone After Failed Open Exploration: A Minimally Invasive Salvage Technique. ENT Disc, 2026, 2(1): 52-56

 

Polymer dipole engineering enables efficiency breakthrough in blue perovskite QLEDs






Science China Press

Analysis of PVDF on exciton recombination in QLEDs. 

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Schematic illustrations of exciton recombination in QDs without (a) and with PVDF (b). Visual two-dimensional exciton recombination diagram (top) and the corresponding exciton recombination rate (bottom) of the QLEDs without (c) and with PVDF (d). EL spectra of perovskite QLEDs without (e) and with (f) PVDF under different applied current density. Insets are the corresponding photograph of working QLEDs with log character of “ZZU” under an applied voltage of 3.0 V.

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Credit: ©Science Bulletin





Blue light-emitting diodes play irreplaceable roles in full-color display, general lighting and optical signal transmission fields. Metal halide perovskites have become ideal candidates for high-performance blue LEDs, benefiting from their high photoluminescence quantum yield, excellent color purity and simple solution manufacturing process.

At present, the EQE of blue perovskite LEDs has continuously broken through, yet their PE, the key indicator to evaluate device power consumption, remains at a low level. Compared with red and green perovskite materials, blue perovskites own wider bandgap, which brings higher intrinsic driving energy consumption. Meanwhile, insulating organic ligands on quantum dots (QDs) surfaces hinder carrier transport, further raising device working voltage and limiting power conversion efficiency.

To address this long-standing efficiency mismatch challenge, Zhengzhou University researchers introduced ordered dipolar PVDF into the QDs emitting layer. The polymer dipoles effectively regulate the directional transport and radiative recombination behavior of electrons and holes. Besides, polar atoms in PVDF molecules passivate surface defect sites of perovskite QDs, greatly reducing parasitic non-radiative energy loss.

Benefiting from this dual modulation strategy, the optimized blue perovskite QLEDs accomplish world-record device performance: a peak PE of 43.9 lm W−1, an EQE of 28.7%, a low turn-on voltage of 2.2 V, and a maximum luminance up to 5474 cd m−2. Meanwhile, the devices exhibit robust spectral stability and superior operational durability under continuous working conditions.

This dipole interface engineering strategy resolves the efficiency imbalance dilemma of blue perovskite QLEDs, and offers important theoretical guidance and technical routes for the industrial development of energy-saving perovskite display and lighting optoelectronic devices.

 

Lifestyle can protect childhood cancer survivors



University of Gothenburg
Aron Onerup 

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Aron Onerup, University of Gothenburg.

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Credit: Photo: Anna Onerup.





Healthy lifestyles can reduce the risk of cardiovascular disease and other complications in childhood cancer survivors. These are the findings of two new international studies.

Children who survive cancer are at increased risk of cardiovascular disease and other chronic health problems later in life - often as a result of the treatment that saved their lives.

Two new international studies, led by researchers at the University of Gothenburg and St. Jude Children's Research Hospital, now show that a healthy lifestyle can have a protective effect.

In one study, published in Nature Communications, over 18,000 childhood cancer survivors were followed for up to 30 years. The results show that a large proportion of chronic health problems emerging following childhood cancer can be linked to lifestyle factors such as physical inactivity, obesity, smoking and high alcohol intake - and that these factors together account for a proportion of the burden of disease in adulthood that is comparable what previous cancer treatments such as radiation and chemotherapy account for.

Lifestyle plays a big role

“This reveals that lifestyle plays a much bigger role than previously thought. Unlike the treatments already given, the lifestyle can actually be changed,” says Aron Onerup, a Pediatrician and Researcher at the University of Gothenburg and a former Postdoctoral Fellow at St. Jude Children's Research Hospital in Memphis, USA.

The second study, published in JACC: CardioOncology, focuses on people treated for Hodgkin's lymphoma as children or adolescents. The study included over 2,300 survivors of the disease, a type of cancer that emerges in the lymph nodes.

The study shows that lack of regular exercise in this group contributes to a 1.4 times higher incidence of cardiovascular disease compared to the total disease burden in the general population, or twelve times more than can be explained by insufficient exercise in the general population - despite the fact that the differences in lifestyle habits were not large.

“This means that physical activity can make a big difference in reducing the extra risk that emerges after cancer treatment and modify the negative effects from cancer treatments. Our results provide strong scientific support for offering survivors structured support for healthy lifestyles,” says Aron Onerup.

Long-term support needed

Together, the studies highlight that healthy lifestyles - especially physical activity and a healthy weight - can be crucial in preventing serious diseases in childhood cancer survivors. The researchers believe that the results should lead to lifestyle support becoming an integral part of long-term follow-up after childhood cancer.

“This is something we have partly taken into account in the national healthcare program for long-term follow-up after childhood cancer by emphasizing the importance of mapping lifestyle habits,” says Aron Onerup. “What we are now working on is to develop and test ways to support these individuals to adopt long-term healthy lifestyles, through interventions both in childhood, adolescence, and in adulthood.”
Aron Onerup is a Researcher within Pediatrics at Sahlgrenska Academy at the University of Gothenburg and a Specialist Physician at the Pediatric Cancer Center at Queen Silvia Children's Hospital, Sahlgrenska University Hospital, in Gothenburg.

 

Overdoing skincare in adolescence can do more harm than good



Semmelweis University
Dr. Anikó Kovács, dermatologist at Semmelweis University’s Department of Dermatology, Venereology and Dermatooncology 

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More and more teenagers are using cosmetics intended for adults that contain active ingredients – yet overdoing skincare at this age can even make things worse. In adolescence, a poorly chosen skincare routine can lead to dry skin, irritation, and even painful or itchy allergic reactions, says Dr. Anikó Kovács, a dermatologist at Semmelweis University’s Department of Dermatology, Venereology and Dermatooncology.

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Credit: Photo: Bálint Barta - Semmelweis University, Budapest, Hungary





More and more teenagers are using cosmetics intended for adults that contain active ingredients – yet overdoing skincare at this age can even make things worse. In adolescence, a poorly chosen skincare routine can lead to dry skin, irritation, and even painful or itchy allergic reactions, says Dr. Anikó Kovács, a dermatologist at Semmelweis University’s Department of Dermatology, Venereology and Dermatooncology.

In recent years, the skincare habits of children and teenagers have changed dramatically. Influenced by trends on social media, this age group is now starting to use cosmetics, makeup products, and preparations containing active ingredients at an increasingly younger age. “However, it’s important to distinguish between cases when a young person actually has a skin problem or when they are treating completely healthy skin,” explains Dr. Anikó Kovács. As she notes, young skin is not yet mature, so it is more sensitive and vulnerable to active ingredients than adult skin.

One of the biggest dangers in teenage skincare is overdoing it. Young skin does not require a complex routine, but rather conscious, moderate care using reliable preparations. Cosmetics sold in Hungary and the European Union undergo strict testing, making them a safer choice than products from unknown sources. “If possible, it is worth seeking advice from a dermatologist or pharmacist when selecting the right products,” the expert recommends.

For children who do not have skin problems – such as those in the 10-11 age group – gentle facial cleansing, for example with fragrance-free micellar water, and the use of a sunscreen in the mornings that is suitable for their skin type, are sufficient. Excessive moisturizing at this age can even cause complaints, such as skin inflammation around the mouth. One of the most common mistakes is using anti-acne products with a strong drying effect on healthy or slightly oily skin. This can easily lead to dry skin, irritation, and red, itchy, or even painful allergic reactions, known as contact dermatitis.

The most common skin problem in adolescence is acne. It typically appears on the face, and in more severe cases, on the back or chest, where there are many sebaceous glands. Treatment is based on regular facial cleansing once or twice a day with a cleanser specifically formulated for oily skin, removing makeup and impurities, followed in the evening by applying acne-fighting creams containing active ingredients, and moisturizing and sun protection in the morning. The specialist also warns that “home remedies” circulating on social media and the simultaneous use of multiple strong active ingredients can significantly worsen the symptoms.

Wearing makeup is now routine even among teenagers, but it is important to remove all traces of makeup every day and, whenever possible, avoid using products that are too oily or provide heavy coverage.

If a child’s skin becomes red or inflamed after wearing makeup or using cosmetics, the first step is always to wash off the product. In milder cases, soothing creams containing panthenol can help, but if symptoms do not improve, a medical examination is necessary.

In adolescence, skincare is not a competition: Less is often more, and a conscious, age-appropriate routine protects skin health in the long term.

 

New study suggests fish gut microbe helps regulate ocean health


A fish–microbe partnership may produce minerals that help shape the marine carbon cycle



University of Miami Rosenstiel School of Marine, Atmospheric, and Earth Science

New Study Suggests Fish Gut Microbe Helps Regulate Ocean Health 

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Gulf toadfish (Opsanus beta)

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Credit: Diana Udel, University of Miami Rosenstiel School





New research reveals a potential link between the gut microbes of a fish and global ocean processes, offering new insight into how marine ecosystems help regulate ocean chemistry and the marine carbon cycle.

The study, led by former graduate student Anthony Bonacolta in the Department of Marine Biology and Ecology at the University of Miami Rosenstiel School of Marine, Atmospheric, and Earth Science, found that symbiotic gut microbes may work in tandem with marine fish to produce a form of calcium carbonate that influences overall ocean health and serves as a key carbon sink. This process, long attributed primarily to fish physiology, may in fact depend on a previously unrecognized microbial partnership.

Bony fish, called teleosts, drink seawater to stay hydrated. Inside their intestines, they process excess calcium and carbonate ions and excrete them as solid pellets of calcium carbonate called ichthyocarbonates.

“This work suggests that the gut microbiome may play a broader role in both fish biology and global marine nutrient cycles,” said one of the study’s senior authors, Martin Grosell, Maytag Professor of Ichthyology and chair of the Department of Marine Biology and Ecology. “What was previously thought to be a process driven solely by the fish may actually reflect a close symbiosis between the fish and its gut microbial community.”

To conduct the lab experiment, the researchers exposed Gulf toadfish to different salinity levels—brackish (9 ppt), seawater (35 ppt), and hypersaline (60 ppt)—to test how changes in salinity affect ichthyocarbonate formation, which is known to increase as part of the fish’s normal osmoregulation process. Fish kept in low salinity did not produce ichthyocarbonates, while those in seawater and more so in high salinity did.

Samples were collected from different sections of the intestine, from the ichthyocarbonates themselves, and from surrounding water. DNA and RNA were extracted to study both the gut microbiome and gene expression in fish and associated microbes. Microbial communities were characterized using genetic sequencing, and gene expression analyses were used to identify potential roles in carbonate formation.

They found that vibrios, particularly Photobacterium damselae subsp. damselae—were highly abundant in both the gut and associated ichthyocarbonates. These bacteria showed genetic potential for processes linked to ichthyocarbonate production, suggesting they may contribute to mineral formation alongside the fish host.

“Most life on Earth is microbial, driving nutrient cycles and ecosystem function while revealing new dimensions of biological diversity through symbiosis,” said Grosell. “The ocean is especially rich in these partnerships, and the toadfish–vibrio symbiosis potentially linked to calcium carbonate production is a striking new example.”

The study, titled “Symbiotic bacteria may support calcium carbonate precipitation in the Gulf toadfish,” was published May 27, 2026 in the journal PLOS Biology. The authors are: Anthony M. Bonacolta, Tristan Kravitz of the Rosenstiel School, Rocío Mozo of the Institut de Biologia Evolutiva, Barcelona, Spain; Lydia J. Baker, Rachael M. Heuer, and Martin Grosell, the Rosenstiel School, and Javier del Campo Rosesntiel School and Institut de Biologia Evolutiva, Barcelona, Spain.

The research was supported by start-up funds from the University of Miami  by Project PID2023-152522NB-I00 financed by the Ministry of Science, Innovation, and Universities in Spain.