Processing Insulating CaTiO <sub>3</sub> into a High‐performance Photothermoelectric Material

J Jianbo Li (State Key Laboratory of Materials Processing and Die & Mould Technology, School of Materials Science and Engineering) J Jinghan Zhao (Inner Mongolia Key Laboratory of Biophysics and Bioinformatics School of Physical Science and Technology Inner Mongolia University Hohhot Inner Mongolia P. R. China) M Manliu Du (Inner Mongolia Key Laboratory of Biophysics and Bioinformatics School of Physical Science and Technology Inner Mongolia University Hohhot Inner Mongolia P. R. China) Z Zhang Chen Y Ying Fu G Guibing Zhang (Inner Mongolia Key Laboratory of Biophysics and Bioinformatics School of Physical Science and Technology Inner Mongolia University Hohhot Inner Mongolia P. R. China) Y Yaqian Du (Inner Mongolia Key Laboratory of Biophysics and Bioinformatics School of Physical Science and Technology Inner Mongolia University Hohhot Inner Mongolia P. R. China) J Junjie Liu (Institute of Molecular Physiology) J Jun Wang

Abstract

ABSTRACT Photothermoelectric (PTE) detectors have attracted extensive attention due to the advantages of no external bias, negligible 1/f noise, and low fabrication cost for arrayed and miniaturized devices, and they circumvent the bandgap limitation of traditional photon detectors. However, the practical application of current mainstream PTE materials remains severely hindered by their poor high‐temperature stability, especially in harsh scenarios including high‐temperature monitoring and industrial waste‐heat detection. In this work, CaTiO 3 is selected as the PTE material owing to its outstanding high‐temperature stability, excellent chemical stability, non‐toxicity, and low cost. Nevertheless, intrinsic insulating CaTiO 3 possesses neither efficient optical absorption nor favorable thermoelectric properties. Herein, abundant oxygen vacancies are introduced to endow CaTiO 3 with broad‐spectrum optical absorption via the formation of defect energy levels within the bandgap. Meanwhile, La doping was employed to improve its thermoelectric performance. As a result, the La 0.2 Ca 0.8 TiO 3 sample achieves a responsivity of ≈300 mA W −1 and a noise level below 5 × 10 −9  W Hz −1/2 across a broad spectral range when only intrinsic resistance is considered. It well meets the application needs of harsh civilian environments with no strict requirement for response speed. This work offers a feasible strategy for developing high‐performance PTE detectors applicable to high‐temperature and harsh working conditions.

Article Details

Volume / Issue Vol. 38, Issue 41
Published July 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (9)

J

Jianbo Li

State Key Laboratory of Materials Processing and Die & Mould Technology, School of Materials Science and Engineering

J

Jinghan Zhao

Inner Mongolia Key Laboratory of Biophysics and Bioinformatics School of Physical Science and Technology Inner Mongolia University Hohhot Inner Mongolia P. R. China

M

Manliu Du

Inner Mongolia Key Laboratory of Biophysics and Bioinformatics School of Physical Science and Technology Inner Mongolia University Hohhot Inner Mongolia P. R. China

Z

Zhang Chen

Y

Ying Fu

G

Guibing Zhang

Inner Mongolia Key Laboratory of Biophysics and Bioinformatics School of Physical Science and Technology Inner Mongolia University Hohhot Inner Mongolia P. R. China

Y

Yaqian Du

Inner Mongolia Key Laboratory of Biophysics and Bioinformatics School of Physical Science and Technology Inner Mongolia University Hohhot Inner Mongolia P. R. China

J

Junjie Liu

Institute of Molecular Physiology

J

Jun Wang