Time‐Resolved Ratiometric Fluorescence Nanothermometer for Real‐Time Endoscopic Temperature Guidance during Tumor Ablation

L Lei Chen J Jiamiao Yin (Department of Chemistry & Academy for Engineering and Technology Fudan University Shanghai 200441 China) Y Yiran Wang Y Yiwei Fan Y Yuetian Pei (Department of Chemistry & Academy for Engineering and Technology Fudan University Shanghai 200441 China) Z Zelun Cai (College of Chemistry and Molecular Engineering Peking University Beijing 100871 China) W Wenchao Yan (School of Physics and Astronomy, State Key Laboratory of Dark Matter Physics, Key Laboratory for Laser Plasmas) D Donghao Hu (School of Chemistry and Chemical Engineering & Institute of Translational Medicine Shanghai Jiao Tong University Shanghai 200240 China) Q Qingbing Wang (Department of Interventional Radiology Ruijin Hospital School of Medicine Shanghai Jiao Tong University Shanghai 200025 China) H Huadong Wang Z Zhiwei Liu Z Zuqiang Bian (Beijing National Laboratory for Molecular Sciences, State Key Laboratory of Rare Earth Materials Chemistry and Applications, College of Chemistry and Molecular Engineering) F Fuyou Li

Abstract

Abstract Thermal ablation is a common treatment option for early‐stage cancers, but the lack of real‐time temperature imaging feedback method increases the risk of incomplete or excessive ablation. Although ratiometric nanothermometer offers a rapid temperature imaging solution, accurate in vivo signal extraction remains challenging due to the autofluorescence and wavelength‐dependent tissue absorption and scattering. Herein, a time‐resolved ratiometric fluorescence nanothermometer composed of europium and iridium complex with identical working wavelength but distinguishing lifetimes is reported, whose well‐designed structures enable 450 nm excitation of both complexes with a high quantum yield (57.8%). Based on the nanothermometer, accurate signal extraction is realized in whole blood, beneath a 2 cm tissue phantom and a 5 mm pork slice through a time‐resolved ratiometric method. By leveraging the exceptional thermal sensitivity (6.9% K −1 ), high temperature resolution (0.02 K), and clinically relevant temperature range (30–96 °C) of the nanothermometer, a fluorescence temperature endoscopy system is further designed with a real‐time temperature imaging speed of 10 fps, which is applied to minimally invasive temperature monitoring during microwave ablation of liver tumors in rabbits, realizing precise ablation control through dynamic ablation power adjustment. The real‐time and accurate temperature imaging performance of the nanothermometer may offer a new perspective for intraoperative guidance.

Article Details

Volume / Issue Vol. 37, Issue 28
Published July 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (13)

L

Lei Chen

J

Jiamiao Yin

Department of Chemistry & Academy for Engineering and Technology Fudan University Shanghai 200441 China

Y

Yiran Wang

Y

Yiwei Fan

Y

Yuetian Pei

Department of Chemistry & Academy for Engineering and Technology Fudan University Shanghai 200441 China

Z

Zelun Cai

College of Chemistry and Molecular Engineering Peking University Beijing 100871 China

W

Wenchao Yan

School of Physics and Astronomy, State Key Laboratory of Dark Matter Physics, Key Laboratory for Laser Plasmas

D

Donghao Hu

School of Chemistry and Chemical Engineering & Institute of Translational Medicine Shanghai Jiao Tong University Shanghai 200240 China

Q

Qingbing Wang

Department of Interventional Radiology Ruijin Hospital School of Medicine Shanghai Jiao Tong University Shanghai 200025 China

H

Huadong Wang

Z

Zhiwei Liu

Z

Zuqiang Bian

Beijing National Laboratory for Molecular Sciences, State Key Laboratory of Rare Earth Materials Chemistry and Applications, College of Chemistry and Molecular Engineering

F

Fuyou Li