Clinical applicable skin-interfaced thermal guiding sensor for warning perioperative abnormalities in core body temperature and blood perfusion rate

Continuous monitoring of core temperature and blood perfusion is essential during general anesthesia, yet current workflows leave a critical gap during induction, before invasive probes can be placed. We present a compact, skin-interfaced thermal sensing platform for non-invasive monitoring throughout the anesthetic process. The device combines thermal-guiding materials with real-time heat-transfer modeling and inversion algorithms to estimate tissue thermal conductivity, blood perfusion, core temperature, and surface heat flux. Phantom and human-subject experiments showed measurement errors within ±10% or ±0.1 °C. During laparoscopic surgery, the estimated core temperature agreed well with invasive esophageal measurements. Long-term monitoring across sleep, exercise, and rest also demonstrated robust performance compared with a conventional dual-heat-flux sensor (r > 0.85). This multimodal platform may provide a reliable alternative for perioperative thermal monitoring and support broader applications in personalized thermal health management. Continuous perioperative monitoring of core temperature and peripheral perfusion remains challenging. Here, the authors present a skin-interfaced thermal-guiding sensor that combines engineered heat transport with physics-based inversion for multimodal monitoring.

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Publication Details

Journal
Nature Communications
Published
2026-08-25
DOI
https://doi.org/10.1038/s41467-026-77154-3
Primary Topic
Thermal Regulation in Medicine
Type
article
Field-Weighted Citation Impact
0.00

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article

Clinical applicable skin-interfaced thermal guiding sensor for warning perioperative abnormalities in core body temperature and blood perfusion rate

Yanhui Feng, Lin Qiu, Xiang Li, Yongzheng Han et al.
Nature Communications
Thermal Regulation in Medicine
article

Clinical applicable skin-interfaced thermal guiding sensor for warning perioperative abnormalities in core body temperature and blood perfusion rate

Yanhui Feng, Lin Qiu, Xiang Li, Yongzheng Han, Wang Xin, Chuanli Zhou, Yanbo Du
article en

Abstract

Continuous monitoring of core temperature and blood perfusion is essential during general anesthesia, yet current workflows leave a critical gap during induction, before invasive probes can be placed. We present a compact, skin-interfaced thermal sensing platform for non-invasive monitoring throughout the anesthetic process. The device combines thermal-guiding materials with real-time heat-transfer modeling and inversion algorithms to estimate tissue thermal conductivity, blood perfusion, core temperature, and surface heat flux. Phantom and human-subject experiments showed measurement errors within ±10% or ±0.1 °C. During laparoscopic surgery, the estimated core temperature agreed well with invasive esophageal measurements. Long-term monitoring across sleep, exercise, and rest also demonstrated robust performance compared with a conventional dual-heat-flux sensor (r > 0.85). This multimodal platform may provide a reliable alternative for perioperative thermal monitoring and support broader applications in personalized thermal health management. Continuous perioperative monitoring of core temperature and peripheral perfusion remains challenging. Here, the authors present a skin-interfaced thermal-guiding sensor that combines engineered heat transport with physics-based inversion for multimodal monitoring.

Nature Communications
Peking University (CN), Peking University Third Hospital (CN), Shandong University of Science and Technology (CN), University of Science and Technology Beijing (CN)
National Natural Science Foundation of China, Peking University, University of Science and Technology Beijing, Peking University Third Hospital, Beijing Nova Program, Fundamental Research Funds for the Central Universities
Openalex Percentile: Top 19%
Thermal Regulation in Medicine
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