Enhanced Sensitivity to Blackbody Radiation in Spintronic Poisson Bolometers
Ziyi Yang, Sakshi Gupta, Jehan Shalabi, Daien He, Leif Bauer, Mohamed A. Mousa, Angshuman Deka, Zubin Jacob

TL;DR
This paper presents a spintronic Poisson bolometer with plasmonic nanoantennas achieving cryogenic-level sensitivity for LWIR detection at room temperature, enabling high-performance uncooled infrared imaging.
Contribution
The integration of spintronic and plasmonic materials in a Poisson bolometer enhances sensitivity, reaching a noise equivalent differential temperature of 35 mK at room temperature.
Findings
Achieved a noise equivalent differential temperature of 35 mK at 50 Hz.
Plasmonic nanoantenna array with over 60% broadband LWIR absorptance.
Demonstrated room-temperature performance comparable to sensitive cooled detectors.
Abstract
High-sensitivity long-wave infrared (LWIR) detection is crucial for observing weak thermal radiation. Recently, the Poisson bolometer has been proposed as a fundamentally new platform for uncooled infrared detection. In contrast to traditional analog detectors, where signal and noise are determined by continuous currents or voltages, the Poisson bolometer's signal and noise are governed by Poissonian counting statistics regardless of the light source. In this work, we demonstrate advancements in uncooled infrared detection towards cryogenic-level sensitivity through the integration of spintronic and plasmonic materials. Specifically, a spintronic Poisson bolometer is experimentally integrated with a plasmonic nanoantenna array optimized for broadband LWIR absorption to enhance the temperature increase of the sensing layer. The plasmonic absorber exhibits an absorptance exceeding 60\%…
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