Ultra-High Sensitivity, Wide-Range Thermometry Based on High-Quality Microscale Diamond Resonators

© 2025 The Author(s). Advanced Materials published by Wiley‐VCH GmbH.

Détails bibliographiques
Publié dans:Advanced materials (Deerfield Beach, Fla.). - 1998. - 37(2025), 42 vom: 25. Okt., Seite e02012
Auteur principal: Zhao, Wen (Auteur)
Autres auteurs: Chen, Guo, Teraji, Tokuyuki, Koide, Yasuo, Toda, Masaya, Liao, Meiyong
Format: Article en ligne
Langue:English
Publié: 2025
Accès à la collection:Advanced materials (Deerfield Beach, Fla.)
Sujets:Journal Article MEMS diamond low noise thermometry ultra‐high resolution
Description
Résumé:© 2025 The Author(s). Advanced Materials published by Wiley‐VCH GmbH.
Next-generation thermometry requires ultrahigh temperature sensitivity, precision, and microscale or nanoscale spatial resolution for bio-calorimetry, optoelectronic sensing, quantum science, energy storage, and thermal management of electronic devices. Current thermometry approaches based on thermocouple, resistive, and optical mechanisms suffer from various problems such as large volume, low resolution, high noise level, and narrow temperature range. Microelectromechanical system (MEMS) resonators hold great potential as thermometry due to the small size, batch fabrication, and facile integration with electrical circuits. However, mainstream silicon MEMS thermometry struggles with the trade-off between responsivity, temperature resolution, and sensitivity. In this work, we utilize the highest crystal quality single-crystal diamond and multi-mode resonance for MEMS cantilever thermometry to address these challenges. The resulting diamond MEMS thermometry exhibits unparalleled performance, with an ultra-high sensitivity of ≈22 nKHz-1/2, a high temperature resolution of 100 µK, and a wide-temperature range from 6.5 to 380 K. The groundbreaking sensing performance highlights the versatility and transformative potential of diamond MEMS resonator as the next-generation platform for ultrahigh-sensitivity and high-resolution temperature sensing in microscale or nanoscale space
Description:Date Revised 23.10.2025
published: Print-Electronic
Citation Status PubMed-not-MEDLINE
ISSN:1521-4095
DOI:10.1002/adma.202502012