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| − | '''Potassium-argon dating''' is a method for estimating the age of [[igneous]] rocks by measuring the ratio of potassium-40 to argon-40 present. | + | '''Potassium-argon dating''' is a method for estimating the age of volcanic rocks by measuring the ratio of potassium-40 to argon-40 present. |
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| | The method is based on the fact that the potassium-40 [[isotope]] of potassium [[radioactiv decay | decay]]s over time to form argon-40. The useful fact about these two substances is that at normal temperatures, potassium is a solid, but argon is a gas. Therefore, during volcanic eruptions, any argon that is present escapes from the rock. But after the rock solidifies, any potassium-40 that is present continues to decay, and the argon-40 that is produced cannot escape from the rock. | | The method is based on the fact that the potassium-40 [[isotope]] of potassium [[radioactiv decay | decay]]s over time to form argon-40. The useful fact about these two substances is that at normal temperatures, potassium is a solid, but argon is a gas. Therefore, during volcanic eruptions, any argon that is present escapes from the rock. But after the rock solidifies, any potassium-40 that is present continues to decay, and the argon-40 that is produced cannot escape from the rock. |
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| − | Thus, geologists use potassium-argon dating to measure the age of volcanic rocks. If the concentration of argon-40 is almost zero, then the rock was formed recently. If it is high relative to the amount of potassium-40 present, then the rock is old. Archaeologists and biologists are also sometimes able to use potassium-argon dating to measure the age of artifacts and fossils, when these have become trapped in a volcanic eruption. | + | Thus, geologists use potassium-argon dating to measure the age of volcanic rocks. If the concentration of argon-40 is almost zero, then the rock was formed recently. If it is high relative to the amount of potassium-40 present, then the rock is old. Archaeologists and biologists are also sometimes able to use potassium-argon dating to measure the age of artifacts and fossils, when these have become trapped in or buried under volcanic rock. |
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| | The mathematical formula that is used to figure the age of the rock depends on the [[half-life]] of carbon-40 (the time it takes for half the potassium-40 in a given sample to decay). The half-live of potassium-40 is approximately 1.26 billion years (that is, 1.26x10<sup>9</sup> years). | | The mathematical formula that is used to figure the age of the rock depends on the [[half-life]] of carbon-40 (the time it takes for half the potassium-40 in a given sample to decay). The half-live of potassium-40 is approximately 1.26 billion years (that is, 1.26x10<sup>9</sup> years). |
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| − | Obviously, this formula depends on the laws of physics remaining constant over time. If the rate of [[radioactive decay]] has changed over time, the formula will not give correct dates. Most scientists believe that the rate of potassium-argon decay has not changed over the history of the earth. However, some creationists have argued that God made the rate of potassium-argon decay much faster during the first few days of Creation, thus causing the potassium-argon dating method to give erroneous results.<ref>http://creationwiki.org/Carbon-14_dating#RATE_Group.27s_Research</ref> | + | Obviously, this formula depends on the laws of physics remaining constant over time. If the rate of [[radioactive decay]] has changed over time, the formula will not give correct dates. Most scientists believe that the rate of potassium-argon decay has not changed over the history of the earth. However, some creationists have argued that God increased the rate of potassium-argon decay during the first few days of Creation, thus causing the potassium-argon dating method to give erroneously old date readings.<ref>http://creationwiki.org/Carbon-14_dating#RATE_Group.27s_Research</ref> |
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| | Other isotopes with shorter half-lives can also be used to date objects- however, each method has its own drawbacks. For instance, the decay of carbon-14 is often used to complement the potassium-argon dating of [[dinosaur]] [[fossils]]. | | Other isotopes with shorter half-lives can also be used to date objects- however, each method has its own drawbacks. For instance, the decay of carbon-14 is often used to complement the potassium-argon dating of [[dinosaur]] [[fossils]]. |