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#atmosphericwindow — Public Fediverse posts

Live and recent posts from across the Fediverse tagged #atmosphericwindow, aggregated by home.social.

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  1. Spain is developing a hydrophobic polymer material for Passive Daytime Radiative Cooling (PDRC).

    "The underlying physical principle of PDRC relies on the material's ability to emit thermal energy as infrared radiation toward outer space, acting as a remote heat sink, by exploiting the atmospheric transparency window (8–13 μm)."

    doi.org/10.1002/nap2.70183

    #Physics #Optics #Photonics #Energy #AtmosphericWindow #RadiativeCooling #PassiveDaytimeRadiativeCooling #PDRC

  2. Spain is developing a hydrophobic polymer material for Passive Daytime Radiative Cooling (PDRC).

    "The underlying physical principle of PDRC relies on the material's ability to emit thermal energy as infrared radiation toward outer space, acting as a remote heat sink, by exploiting the atmospheric transparency window (8–13 μm)."

    doi.org/10.1002/nap2.70183

    #Physics #Optics #Photonics #Energy #AtmosphericWindow #RadiativeCooling #PassiveDaytimeRadiativeCooling #PDRC

  3. Spain is developing a hydrophobic polymer material for Passive Daytime Radiative Cooling (PDRC).

    "The underlying physical principle of PDRC relies on the material's ability to emit thermal energy as infrared radiation toward outer space, acting as a remote heat sink, by exploiting the atmospheric transparency window (8–13 μm)."

    doi.org/10.1002/nap2.70183

    #Physics #Optics #Photonics #Energy #AtmosphericWindow #RadiativeCooling #PassiveDaytimeRadiativeCooling #PDRC

  4. Spain is developing a hydrophobic polymer material for Passive Daytime Radiative Cooling (PDRC).

    "The underlying physical principle of PDRC relies on the material's ability to emit thermal energy as infrared radiation toward outer space, acting as a remote heat sink, by exploiting the atmospheric transparency window (8–13 μm)."

    doi.org/10.1002/nap2.70183

    #Physics #Optics #Photonics #Energy #AtmosphericWindow #RadiativeCooling #PassiveDaytimeRadiativeCooling #PDRC

  5. Basics of #RadiativeCooling through #AtmosphericWindow

    Certain bands of wavelengths allow thermal emissions to directly escape the atmosphere (instead of blocked or partially scattered back to Earth).

    The goal is to shift material emission to that band, while using reflectivity at the absorption wavelengths.

    nature.com/articles/s41377-023

    #physics #optics #photonics

  6. Basics of #RadiativeCooling through #AtmosphericWindow

    Certain bands of wavelengths allow thermal emissions to directly escape the atmosphere (instead of blocked or partially scattered back to Earth).

    The goal is to shift material emission to that band, while using reflectivity at the absorption wavelengths.

    nature.com/articles/s41377-023

    #physics #optics #photonics

  7. Basics of #RadiativeCooling through #AtmosphericWindow

    Certain bands of wavelengths allow thermal emissions to directly escape the atmosphere (instead of blocked or partially scattered back to Earth).

    The goal is to shift material emission to that band, while using reflectivity at the absorption wavelengths.

    nature.com/articles/s41377-023

    #physics #optics #photonics

  8. Basics of #RadiativeCooling through #AtmosphericWindow

    Certain bands of wavelengths allow thermal emissions to directly escape the atmosphere (instead of blocked or partially scattered back to Earth).

    The goal is to shift material emission to that band, while using reflectivity at the absorption wavelengths.

    nature.com/articles/s41377-023

    #physics #optics #photonics