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Tiny Crystal Measures Temperature and Magnetic Field Simultaneously ⚡ экспресс

Original: "On chip, multifunctional quantum sensing using single spins in a van der Waals crystal"
arXiv:2606.19978 · 2026-06-18 · CC BY · ⏱ 1 min · Quantum Physics
A microscopic flaw in a transparent crystal works as a two-way sensor: its color reveals temperature, while its blinking rhythm tracks magnetic fields.
Abstract

Simultaneous nanoscale measurement of temperature and magnetic field is in demand across many scientific and technological fields. However, cross-sensitivity to different physical quantities makes it difficult to use a single sensor for multiple parameters. This work demonstrates independent dual sensing of temperature and magnetic field using single quantum emitters in hexagonal boron nitride (hBN). The independence of the zero-phonon line (ZPL) position's response to temperature and the optically detected magnetic resonance (ODMR) to magnetic field is experimentally confirmed. Local temperature measurement of a microchip was performed with simultaneous monitoring of the external magnetic field. The results establish quantum emitters in hBN as a reliable platform for multifunctional quantum sensing under realistic conditions.

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A tiny defect in a boron nitride crystal behaves like a microscopic indicator bulb. Shine light on it, and it glows, with the shade shifting with temperature: the warmer it gets, the redder the glow. At the same time, if you bathe the defect in microwaves, its brightness flickers in sync with an external magnetic field. The reason lies in the electron’s spin — the quantum equivalent of a spinning top — that flips its rotation under magnetic influence. So this single pinpoint independently reports heat (via color) and magnetic field (via pulsations). The method harks back to the work of Раби on magnetic resonance, while modern lasers, co-invented by Таунса, have made it possible to study individual defects.

It turns out these sensors are so small you can mount them on the tip of an optical fiber — yielding a hair-thin probe capable of peering deep inside a live microchip or even a living cell. Unlike similar devices based on углерода (diamond), boron nitride is cheap and easy to process. This technology paves the way for affordable multifunctional instruments that blend спектроскопия and фотометрия with magnetism analysis.

🎯 Single defects in boron nitride can be glued to the end of an optical fiber — making a thermometer-magnetometer as thin as a human hair.

🎬 Such a sensor is almost a tricorder from Star Trek: a tiny gadget that measures temperature and magnetic fields at the same time.

Scientists
Christian DopplerD. B. McLaughlinDidier QuelozMichel MayorR. A. RossiterJames Clerk Maxwell
Tags
spectroscopy photometry carbon
Laws
Doppler effectMaxwell's equationsPlanck's lawPlanck–Einstein relationWien's displacement lawStefan–Boltzmann law
Original: arXiv:2606.19978 · CC BY · bridge42worlds