JWST has found MASSIVE galaxies in the early Universe which we can't explain
Understanding JWST Data
In this transcript, the speaker discusses how researchers are using data from the James Webb Space Telescope (JWST) to study distant galaxies. They explain how a spectrum of light can be used to determine the distance and composition of these galaxies.
Searching for Distant Galaxies
- Researchers are using JWST data to search for very distant galaxies in the universe.
- The longer the light from a galaxy has been traveling through the universe, the more distant it is.
- Light gets stretched out to longer wavelengths as it travels through space, which is why we need JWST.
Using Spectra to Study Galaxies
- A spectrum shows how much light is detected at each wavelength after passing through a prism.
- Drops or breaks in the amount of light at specific wavelengths can indicate absorption by elements like hydrogen.
- The Lyman break occurs when hydrogen absorbs light at a specific wavelength, indicating how far away a galaxy is.
- The Balmer break occurs when electrons absorb energy and escape hydrogen atoms in star atmospheres, indicating their temperature and density.
Conclusion
The speaker explains that researchers are using spectra obtained from JWST data to learn more about distant galaxies. By analyzing drops or breaks in the amount of light at specific wavelengths, they can determine important information about these galaxies such as their distance and composition.
Understanding Galaxies
In this section, the speaker explains how astronomers can determine the age and mass of a collection of stars in a galaxy by measuring the strength of a break in its spectrum. They also discuss how imaging data is used to fit models of what spectra could look like.
Determining Age and Mass of Stars in a Galaxy
- Astronomers can determine the age and mass of a collection of stars in a galaxy by measuring the strength of a break in its spectrum.
- The distribution of masses of stars can be determined by knowing roughly how many smaller and bigger stars are present.
- Models can be used to determine how much light each star gives out at different wavelengths, which helps estimate the total amount of light given off by the collection.
- The mass-to-light ratio can then be used to measure how massive the galaxy is.
Using Imaging Data to Fit Spectra Models
- Imaging data is taken through filters that only let through specific ranges of wavelengths.
- Breaks in spectra can be pinpointed by looking at separate images taken with different filters.
- Fitting models to imaging data provides an estimate for both redshift (distance from Earth) and mass in stars.
- The logarithmic values provided for each galaxy's mass should be converted using 10^M to get actual numbers.
Implications for Our Understanding of Galaxies
- These galaxies have formed as many stars as our Milky Way but within only 750 million years, existing when the universe was just 550 to 750 million years old.
- These galaxies have somehow formed the same number of stars as the Milky Way but in compact blobs with barely any space between individual stars.
- These numbers cannot be explained by our current best model of the universe, indicating a need for further research.
The Hubble Space Telescope and JWST
This section discusses the capabilities of the Hubble Space Telescope and how it compares to the James Webb Space Telescope (JWST).
Comparison between Hubble and JWST
- The Hubble Space Telescope can detect objects at great distances, but not as far back in time as JWST.
- JWST is expected to be revolutionary in its field.
New Data and Models
This section discusses new data that challenges current models of the universe.
Challenges to Current Models
- Some people are calling for current models, such as The Big Bang Theory and Lambda CDM, to be scrapped due to new data from JWST.
- However, decades worth of research and evidence still support these models.
- There are many assumptions that go into getting accurate measurements from the data collected by JWST.
Limitations of Mass Measurements
This section discusses limitations in measuring masses of galaxies with JWST.
Factors Affecting Mass Measurements
- Mass measurements may not be precise due to lack of spectra pinpointing where bar and Lyman breaks actually are.
- Contamination of light from material spiraling around growing black holes could bias results.
- Normalization factor based on local Universe observations could throw off measurements entirely.
Follow-up Observations
This section discusses follow-up observations needed for more precise measurements.
Importance of Follow-up Observations
- Candidate galaxies are likely targets for follow-up observations to get more precise measurements.
- More precise measurements could impact our understanding of how the entire universe has evolved.
Conclusion
This section concludes the video with a brief discussion on light emitted from fusion and insight into the speaker's brain.
Final Thoughts
- Light is emitted from fusion of hydrogen in helium.
- The speaker shares a random thought about a song and provides insight into their brain.
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