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Updated: Jun 19, 2025

Characterization of Thermal Transport in One-dimensional Solid Materials
Published on: January 26, 2014
Broadband nonreciprocal thermal emissivity and absorptivity
Komron J Shayegan1,2, Jae S Hwang3, Bo Zhao4
1Thomas J. Watson Laboratory of Applied Physics, California Institute of Technology, Pasadena, CA, USA.
Researchers achieved broadband nonreciprocal thermal emissivity and absorptivity using gradient epsilon-near-zero InAs layers. This breakthrough enables enhanced control over thermal radiation in the infrared spectrum for energy applications.
Area of Science:
- Physics
- Materials Science
- Optics
Background:
- Kirchhoff's law of thermal radiation states that absorptivity equals emissivity for a body in thermal equilibrium.
- Violating Kirchhoff's law is crucial for advancing photonic energy conversion and radiative cooling technologies.
- Previous demonstrations of spectral directional emissivity and absorptivity inequalities were limited to narrow resonances or non-infrared wavelengths.
Purpose of the Study:
- To demonstrate broadband nonreciprocal thermal emissivity and absorptivity.
- To achieve control over a broad spectral range of unequal spectral directional absorptivity and emissivity.
- To explore the potential for practical applications in photonic energy conversion and radiative cooling.
Main Methods:
- Utilized gradient epsilon-near-zero Indium Arsenide (InAs) layers with subwavelength thicknesses (50 nm and 150 nm).
- Applied an external magnetic field to induce nonreciprocity.
- Measured thermal emissivity and absorptivity within a specific infrared spectral range (12.5-16 μm).
Main Results:
- Demonstrated broadband nonreciprocal thermal emissivity and absorptivity.
- Achieved the effect in the 12.5-16 μm spectral range, overlapping with infrared transparency windows.
- Observed the phenomenon at moderate magnetic field strengths (1 Tesla).
Conclusions:
- The study successfully demonstrates broadband nonreciprocal thermal radiation, a significant advancement over previous narrow-band or non-infrared demonstrations.
- The use of gradient epsilon-near-zero InAs layers offers a promising pathway for practical applications requiring tailored thermal radiative properties.
- This work paves the way for enhanced performance in devices leveraging radiative heat transfer, such as advanced energy converters and cooling systems.
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