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Physicists develop new quantum sensor at the atomic lattice scale

Phys.org Quantum Computing
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⚡ Quantum Brief
German physicists developed a quantum sensor capable of detecting individual electrical charges in crystal lattices with unprecedented atomic-scale precision, addressing a long-standing challenge in materials science. The sensor uses artificial diamond-embedded color centers—lattice defects that emit light sensitive to electric fields—to pinpoint charge traps by observing subtle color shifts, enabling real-time defect localization. Researchers at Humboldt-Universität zu Berlin and Ferdinand-Braun-Institut demonstrated the sensor’s ability to monitor charges at microsecond intervals, revealing dynamic interactions previously unobservable in solid-state materials. The team patented the technology in Germany and the U.S., highlighting its potential for advancing quantum devices, semiconductors, and nanoscale electronics by identifying and mitigating lattice irregularities. Future applications include integrating color centers into diamond tips for atomic-resolution scanning, expanding the sensor’s use across diverse materials and industrial research.
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October 7, 2025 by Heike Bräuer, Humboldt University of Berlin edited by Lisa Lock, reviewed by Robert Egan This article has been reviewed according to Science X's editorial process and policies. Editors have highlighted the following attributes while ensuring the content's credibility: fact-checked peer-reviewed publication trusted source proofread From computer chips to quantum dots—technological platforms were only made possible thanks to a detailed understanding of the used solid-state materials, such as silicon or more complex semiconductor materials. This understanding also includes being able to identify and control irregularities in the crystal lattice of such materials.If, for example, an atom is missing in the lattice structure of the crystals, a single electron and thus an electric charge can become trapped there. Such charge traps generate electromagnetic noise that limits the functionality of these materials. However, it is extremely difficult to locate these charge traps on an atomic scale.Researchers from the "Integrated Quantum Photonics" group at the Department of Physics at Humboldt-Universität zu Berlin (HU) and the "Joint Lab Diamond Nanophotonics" at the Ferdinand-Braun-Institut, led by Prof. Dr. Tim Schröder, have developed a new sensor that can detect such individual electrical charges more precisely than ever before.To achieve this, they relied on a defect in the crystal lattice—two vacancies combined with a foreign atom, which are also called color centers because of their ability to absorb and emit light. It is already known that such optically-active color centers can be used as sensors to obtain information about material properties; however, the newly developed sensor allows individual electrical charges to be detected more precisely.The researchers embedded a color center in a rectangular material made out of artificial diamond. The observation of the slightest changes in the color of the light emitted by the color center in the artificial diamond is the main mechanism for localizing the charge traps of individual electrons. The color center is characterized by a specific sensitivity to electric fields.If a single charge is captured near the sensor, the color changes are clearly visible; but if the charges are only a little further away, they cause almost no changes. This enables extremely precise determination of individual defects. In addition, the method allows real-time monitoring of the charges by repeating the measurement at regular intervals of up to one-millionth of a second.The researchers recently published their study in the journal Nature Communications, demonstrating the properties of the sensor. They have also applied for a patent in Germany and the U.S. for the method and the device for locating charge traps in a crystal lattice."This device is a new tool for researchers in materials science. It makes physical processes, which we were previously unable to observe, visible and helps us understand them. This is because we can now locate the interaction of charges with crystal defects much more precisely and can also record it much faster than before," says Dr. Gregor Pieplow, who developed the software and methodological basis for the sensor."The potential of the sensor goes way beyond that," adds Cem Güney Torun, who worked on the design and setup of the experiment. "The integration of color centers into microscopic diamond tips will make it possible to analyze a wide variety of materials and realize a truly atomic, time-resolved, and fast scanning sensor."More information: Gregor Pieplow et al, Quantum electrometer for time-resolved material science at the atomic lattice scale, Nature Communications (2025). DOI: 10.1038/s41467-025-61839-2 Journal information: Nature Communications Provided by Humboldt University of Berlin 1 hour ago02 hours ago05 hours ago05 hours ago06 hours ago043 minutes ago1 hour ago1 hour ago1 hour ago1 hour ago1 hour ago1 hour ago1 hour ago2 hours ago2 hours agoSep 27, 2024Apr 15, 2025Jun 12, 2025Apr 6, 2023Sep 18, 2025Oct 17, 20241 hour ago3 hours ago7 hours ago23 hours ago23 hours ago22 hours ago

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Source: Phys.org Quantum Computing

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