QST's Heat-Etched Nanodiamond Quantum Sensors Cut Particle-to-Particle Variation to a Quarter and Raise the Signal 55 Percent: ACS Nanoscience Au, 7 October 2026
Uniform nanodiamond quantum sensors for blood diagnostics
Quentir Medicine Monitor
Evidence-based insights for quantum medicine.
A diagnostic test is only useful when it gives the same answer for the same sample, whichever batch of reagent the laboratory happens to open that morning. Tiny diamond particles that act as quantum sensors have shown remarkable sensitivity in research settings, yet each particle has behaved slightly differently, and that spread has stood between the laboratory result and a test a hospital could rely on.
On 7 October 2026 Japan's National Institutes for Quantum Science and Technology (QST), with Chiba University, Institute of Science Tokyo, Kyoto University and the Chiba start-up Type-I Technologies, reported a new way to make nanodiamond quantum sensors that behave far more alike. According to the QST press release of 7 October 2026, the new process reduces particle-to-particle variation to about a quarter of that of conventional particles and raises the quantum signal by 55 percent. The groups see the work as groundwork for quantum liquid biopsy, the detection of very small amounts of disease-related molecules in blood, and for batch production of uniform sensors rather than hand-picking a few outstanding particles.
The paper, "Spin-Uniform Nanodiamond Quantum Sensors for Reproducible Intracellular Thermometry," by Chihiro Suzuki, Ryuji Igarashi and nine co-authors, appeared online in ACS Nanoscience Au (DOI 10.1021/acsnanoscienceau.6c00068) on the same day. For a laboratory director, a diagnostics buyer or a clinician following early cancer detection, it addresses the question that comes before any claim of sensitivity: whether two sensors given the same sample report the same value.
A nanodiamond sensor depends on a defect called the nitrogen-vacancy center, a spot in the diamond lattice where a nitrogen atom sits next to a missing carbon atom. When green laser light falls on the particle, the defect glows red, and microwave measurements of that glow, a method called optically detected magnetic resonance (ODMR), reveal small changes in temperature and in the chemical surroundings. Particles a few tens to a few hundred nanometers across can enter living cells.
The conventional route crushes larger diamond into nanoparticles first and creates the sensing defects afterward. QST explains that mechanical crushing leaves scratches and strain that differ from particle to particle, so every particle carries its own quirks into the measurement. The new process reverses the order. The team first builds nitrogen-vacancy centers into relatively large diamond particles of good crystal quality, then heats them gently in air so that the surface oxidizes away a little at a time. Diamond faces oxidize at different rates, and the researchers tuned the conditions so that disordered outer material goes first. What remains is the most orderly central tenth of the original particle, still small enough for work inside cells.