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Radio “Eyes” Unlocking Secrets of Neutron-Star Collision

Recent News

Exploring How STEM Identities are Formed

Through funding from the U.S. National Science Foundation (NSF), Associated Universities Inc. (AUI), Tumble Media and the STEM Transformation Institute at Florida International University (FIU) are collaborating to support the STEM identity and literacy development of regionally and culturally diverse Latine families through podcast-initiated science talk at home. Seventeen episodes will be recorded for this project in Spanish and English.

Astronomers Make Highest-Resolution Observations Ever from Earth

The Event Horizon Telescope (EHT) Collaboration has conducted test observations with the highest resolution ever obtained from the surface of the Earth. This feat was achieved by detecting light from distant galaxies at a frequency of around 345 GHz, equivalent to a wavelength of 0.87 mm. The Collaboration estimates that, in the future, they will be able to make black hole images 50% more detailed than before. This improvement will sharpen images of supermassive black holes, and allow astronomers to image more black holes than ever before.

Radio “Eyes” Unlocking Secrets of Neutron-Star Collision

Recent News

Exploring How STEM Identities are Formed

Through funding from the U.S. National Science Foundation (NSF), Associated Universities Inc. (AUI), Tumble Media and the STEM Transformation Institute at Florida International University (FIU) are collaborating to support the STEM identity and literacy development of regionally and culturally diverse Latine families through podcast-initiated science talk at home. Seventeen episodes will be recorded for this project in Spanish and English.

Astronomers Make Highest-Resolution Observations Ever from Earth

The Event Horizon Telescope (EHT) Collaboration has conducted test observations with the highest resolution ever obtained from the surface of the Earth. This feat was achieved by detecting light from distant galaxies at a frequency of around 345 GHz, equivalent to a wavelength of 0.87 mm. The Collaboration estimates that, in the future, they will be able to make black hole images 50% more detailed than before. This improvement will sharpen images of supermassive black holes, and allow astronomers to image more black holes than ever before.