ACS Photonics· 2026Q1
Ultrabroadband Mid- to Long-Wave Infrared Spintronic Poisson Bolometer
- 4citations
- Q1SCImago
- 2026year
Short summary
A room-temperature spintronic Poisson bolometer achieves ultrabroadband infrared sensing from 3–14 μm by encoding temperature in discrete stochastic events, surpassing uncooled detectors with a NETD of ≈80–100 mK.
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Abstract
Infrared detectors have traditionally been divided into two fundamental classes, midwave (MWIR, 3–5 μm) and long-wave (LWIR, 8–14 μm). Integrating MWIR and LWIR within a single device is challenging due to distinct materials, cooling needs, and detection mechanisms, while such integration is critical for improved object recognition, temperature estimation, and environmental sensing. In this work, we demonstrate a spintronic Poisson (SP) bolometer enabling room-temperature ultrabroadband sensing across 3–14 μm. Unlike conventional bolometers that rely on continuous analog signals, the SP bolometer implements a Poisson-counting detection paradigm, encoding temperature in discrete stochastic events, which turns thermal noise from a limitation into the basis of the estimator itself. We fabricate the SP bolometer using a spintronic transduction layer integrated with a plasmonic nanoantenna array to enhance broadband infrared absorption. Using spintronic transduction, the device achieves the noise-equivalent temperature difference (NETD, thermal sensitivity metric) of ≈80–100 mK at 300 K, surpassing uncooled detectors and approaching cooled technologies. This work establishes a statistical detection paradigm for room-temperature infrared sensing with broad application potential.
The authors' abstract, as published at the source. ACS Photonics, 2026 · DOI ↗
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Astronomy and AstrophysicsPhysics and Astronomy