Wafer-scale 2D semimetal heterostructures enabling mid-infrared motion tracking with in-sensor perceptual compression

Accurate motion detection and trajectory tracking are crucial for scientific and technological applications, but current techniques rely on high-pixel–density imaging arrays that demand extensive hardware and computational resources. Here, we demonstrate high-performance motion detection and tracking sensors based on in situ monolithically integrated wafer-scale telluride semimetals and germanium. Interfacial engineering enhances carrier transport while minimizing interfacial recombination, enabling room-temperature infrared detection up to 10.6 micrometers with a peak sensitivity of 91.6 millivolts per millimeter, a low nonlinearity of 5.1%, and a specific detectivity exceeding 10 10 centimeter–square root hertz per watt in the mid-infrared range. These advancements facilitate real-time infrared position sensing and trajectory tracking with a resolution of 9.7 micrometers. With in-sensor compression, which achieves a 400× reduction by condensing data from 100 × 100 pixels to 5 × 5 elements, a sparse position-sensitive detector array achieves 95% accuracy in simultaneously identifying and tracking multiple dynamic targets. Our monolithically integrated semimetal sensors open avenues toward resource-efficient, precise motion analytics and perception.

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Publication Details

Journal
Science Advances
Published
2026-09-18
DOI
https://doi.org/10.1126/sciadv.aeh4592
Primary Topic
Advanced Sensor and Energy Harvesting Materials
Type
article
Field-Weighted Citation Impact
0.00

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article

Wafer-scale 2D semimetal heterostructures enabling mid-infrared motion tracking with in-sensor perceptual compression

Longhui Zeng, Di Wu, Shu Ping Lau, Jiewei Chen et al.
Science Advances
Advanced Sensor and Energy Harvesting Materials
article

Wafer-scale 2D semimetal heterostructures enabling mid-infrared motion tracking with in-sensor perceptual compression

Longhui Zeng, Di Wu, Shu Ping Lau, Jiewei Chen, Haiyan Wang, Di Wu, Yuen Hong Tsang, Xinjian Li, Wenxiao Wang, Tianyue Wang, Dongyang Wu, Xue Li, Xue Li, Xinjian Li
article en

Abstract

Accurate motion detection and trajectory tracking are crucial for scientific and technological applications, but current techniques rely on high-pixel–density imaging arrays that demand extensive hardware and computational resources. Here, we demonstrate high-performance motion detection and tracking sensors based on in situ monolithically integrated wafer-scale telluride semimetals and germanium. Interfacial engineering enhances carrier transport while minimizing interfacial recombination, enabling room-temperature infrared detection up to 10.6 micrometers with a peak sensitivity of 91.6 millivolts per millimeter, a low nonlinearity of 5.1%, and a specific detectivity exceeding 10 10 centimeter–square root hertz per watt in the mid-infrared range. These advancements facilitate real-time infrared position sensing and trajectory tracking with a resolution of 9.7 micrometers. With in-sensor compression, which achieves a 400× reduction by condensing data from 100 × 100 pixels to 5 × 5 elements, a sparse position-sensitive detector array achieves 95% accuracy in simultaneously identifying and tracking multiple dynamic targets. Our monolithically integrated semimetal sensors open avenues toward resource-efficient, precise motion analytics and perception.

Science AdvancesVol. 12(38)
Hong Kong Polytechnic University (HK), Shenzhen Polytechnic University (CN), South China Normal University (CN), Zhengzhou University of Light Industry (CN), Zhengzhou University (CN)
National Natural Science Foundation of China, Natural Science Foundation of Henan Province
Decent work and economic growth
Openalex Percentile: Top 21%
Advanced Sensor and Energy Harvesting Materials
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