I always wonder how scientists do know that something was 25, 540 million or 2.560 billion years ago.
Other systems (like samarium-neodymium) are most often used when trying to date things older than the Earth, e.g. meteorites.
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I always wonder how scientists do know that something was 25, 540 million or 2.560 billion years ago.
Other systems (like samarium-neodymium) are most often used when trying to date things older than the Earth, e.g. meteorites.
This reminded me of something I saw at the Science Museum in London a few years ago. A round clock face is used to represent the history of the earth and a narrator tells us the geological events that happen as the clock hands travels around the clock face. At a few seconds to midnight, we're told this is when humans appear. I thought it was a clever way of illustrating how human history occupies such a tiny segment…
Rather than place the present day at midnight on the clock, how about placing the present day on the current value given by the Doomsday Clock [1]. Then, with a little arithmetic, you can label midnight with the projected date of Doomsday :) [1] http://en.wikipedia.org/wiki/Doomsday_Clock
What I find most interesting is that the dawn of anatomically modern humans is actually visible on the 4.54 billion year timeline of the Earth. 200,000 years out of 4.54 billion might only be about 1/23000 of our planet's history, but that's also a whole 1/23000!
If the period of time that humans have been around was drawn to scale, it wouldn't really be visible. If we assume that the width of the bar for the life of the earth is 1500 pixels (the width changes depending on the window size), then the period we have been around will be around 0.06 pixels wide (1500/23000 = 0.065). Much closer to zero pixels than one pixel.
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Out of interest, what country are you from? I'm curious at the fact you called it 'grand-grand'. Here in Australia we use 'great grand(mother etc.)'. Must be a cultural thing.
I just guessed, I'm french :)
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Carbon dating is actually only effective up to about 50,000 years, so its really only ideal for tracking human history after we started migrating out of Africa. This is because the unstable carbon-14 isotope only has a half-life of about 5700 years. There are many other forms of radiometric dating, though. Uranium-lead dating has proven relatively accurate for periods of time between 1 million to 4.5 billion years ag…
I'm curious how it could prove accurate for that time frame? How could something like that be verified or proven?
People have done this many times, and most of the error comes from different levels of uncertainty in the decay constants from one system to another. Many of the decay constants have not been updated for decades (e.g. Steiger and Jager 1977) and are suspected to be a few percent off, but the people who are qualified to make such measurements (physicists + chemists) aren't the people who want to use them in applications (geochronologists and geochemists). So the incentives aren't aligned and I doubt anyone will ever fix them.
Note: Was a geology/geophysics PhD student until recently.