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듣기 연습/Video/SciShow/This Gorgeous Rock Was Made by a Supercontinent

This Gorgeous Rock Was Made by a Supercontinent

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0:00There’s a legend told by the Inuit, of  a brave warrior who was walking along
0:04the icy shore, when he suddenly spotted  lights, trapped within a dull gray stone.
0:10He struck the stone with his spear,  shattering the rock to release them,
0:14and in doing so created the Northern lights.
0:17Not all of the lights were  released though, and some of them
0:20stayed stuck in the rock, where  they became known as ‘frozen fire’.
0:25Today, we call these stones labradorite,
0:28named after Labrador in northern  Canada where they were first found.
0:32But it can also be found in places  like Finland and Madagascar.
0:36Chances are, if you smash it  like the Inuit warrior did,
0:39the color will indeed disappear,  since there’s actually no
0:43blue or green pigment in these rocks.
0:46Instead, that frozen fire is a  product of a unique formation process
0:51that spanned millions of years … and  required a supercontinent to make it happen.
0:57[♪ INTRO]
1:01Our story begins in the middle of the  ancient supercontinent of Gondwana,
1:06in what one day would be called Madagascar.
1:09Today, Madagascar is an island surrounded  by tropical ocean on all sides.
1:14But more than six hundred million years ago,
1:16it was a sliver of land sandwiched  between fragments of Africa and India,
1:21with no ocean to be seen.
1:23Long before the more famous Pangea,
1:25the supercontinent of Gondwana contained  the smooshed together landmasses
1:30of modern-day Africa, India, Australia,  Antarctica and South America.
1:36It was by far the largest piece  of land on Earth at the time,
1:40covering up to a fifth of the Earth’s surface.
1:43And, in addition to being big  in area, Gondwana was thick.
1:48Like continental crust today, it would  have been about 40 kilometers thick
1:52on average, extending even deeper up  to 75 kilometers in the mountain roots
1:58where continental chunks had  crashed into one another.
2:01This solid chunk of thick  continental crust acted as
2:04an impenetrable lid for anything  trying to come up from underneath.
2:09So whenever mantle convection or  plumes of material came flowing up
2:14beneath the supercontinent, the  magma just got stuck instead of
2:18punching through and creating volcanoes.
2:20These plumes created magma  chambers called plutons,
2:24trapped within the heart of the  continental crust, tens of kilometers down.
2:28With no way out of the deep hot crust,
2:31the molten magma stayed put and stayed  hot, often for millions of years.
2:36And when you leave a bubble  of magma sitting on its own
2:39for that long, something curious happens…
2:42…it sorts itself out.
2:44As the magma cools down super slowly,
2:47the minerals that make up the  rock begin to crystallize out.
2:51But each mineral has a slightly  different melting point,
2:54so they will solidify in a very  particular order as the temperature drops.
2:59First to form are the dark-colored, iron-rich  minerals, like olivine and pyroxene.
3:05But these are also quite dense minerals too.
3:07They’re denser than the rest of the magma,
3:10and so once they form they sink to  the bottom of the magma chamber.
3:14In contrast, the lighter-colored minerals  like quartz and feldspar are less dense,
3:19and so they essentially  ‘float’ to the top of the mix.
3:22This process is known as  fractional crystallization,
3:25and it makes for some surprisingly well-sorted,
3:28and sometimes even pure, mineral mixes,  simply from being left for a long time.
3:34This was happening underneath  Madagascar 600 million years ago,
3:39as the first crucial step to making  labradorite and its frozen fire.
3:44In the middle of Gondwana,  a bunch of plutons created
3:47a rock called anorthosite, made  almost entirely from feldspar.
3:52There are a lot of different kinds of feldspars,
3:54and the concentration of metals in  them determine which kind they are.
3:59Feldspars that are rich in  sodium are called albites,
4:02those rich in calcium are called anorthites,
4:05and ones rich in potassium are called orthoclases.
4:09Labradorite is the name for a  feldspar that’s between 50% and 70%
4:14calcium-rich anorthite, with the  rest made up of sodium-rich albite.
4:20And in that ancient Madagascan pluton,
4:23the rock that formed had just the  right chemistry to make labradorite.
4:28The thing is, on their own, a lot of feldspars are
4:31a pretty unremarkable greyish color.
4:33It takes a second step, with just  the right conditions and chemistry,
4:37for those feldspars to become  iridescent and freeze fire.
4:42See, at high temperatures calcium-rich  anorthite and sodium-rich albite
4:46are perfectly happy coexisting, mixed  together in the same crystal of labradorite.
4:52At the lower temperatures you  find at the Earth’s surface,
4:55they’d much rather be their own, purer thing.
4:58And if they’ve already solidified  into that albite-anorthite mix,
5:02it’s reasonable to think  that they’re stuck that way.
5:05And that’s true under most conditions.
5:08When feldspars crystallize and cool  quickly, the mixture is fixed in place.
5:13But in supercontinent plutons,  there’s a rare opportunity to do
5:17a little bit more sorting and  separation, even after solidification.
5:22That’s because, as I mentioned before,  things stay hot for a really long time.
5:27Even after temperatures have dropped low  enough for crystals of feldspar to form,
5:31it’s still hot enough for the atoms  inside to have a bit of wiggle room.
5:37So the calcium and sodium metal  ions can migrate through the solid,
5:42separating into their own,  pure, albite and anorthite
5:45layers inside the feldspar crystal.
5:48Now, even though atoms are very small,  migrating through solids isn’t exactly
5:53the easiest thing to do, so they  don’t actually move that far.
5:57The result is a sequence of super thin  alternating albite and anorthite layers
6:03that are just a few hundred nanometers thick.
6:06These are called ‘exsolution lamellae’,  and in labradorite you only get them in
6:11a very specific range of compositions,  when the feldspar has between
6:16fifty and seventy percent anorthite,
6:19and when the temperature has stayed hot enough
6:22for long enough for the layers to form.
6:24And it’s these lamellae that are responsible  for labradorite’s colorful flashes -
6:29a phenomenon known as labradorescence.
6:32It works in a similar way to how you get  colors reflected from the back of a DVD,
6:37or from a blue morpho butterfly wing.
6:40The blues and greens you see  are a type of structural color,
6:44not a pigment like blue paint.
6:46This happens because the tiny anorthite  and albite layers have slightly different
6:51refractive indices, which  mean that they bend the light
6:55that passes through them by  slightly different amounts.
6:58Light that enters the translucent  labradorite crystal becomes refracted
7:02by the lamellae, and reflected from  the boundaries between the lamellae,
7:08bouncing back to our eyes.
7:10This refracted and reflected  light interferes with itself,
7:14reinforcing some colors and cancelling out others,
7:18creating the play of color that seems to  come from just underneath the surface.
7:22To make the characteristic electric  blue flash from labradorite,
7:26the albite-anorthite layers need  to have a specific thickness
7:31of between 128 and 252 nanometers.
7:37Since the layers might not be  consistent across the crystal or stone,
7:41the frozen fire you end up  seeing is unique to every piece.
7:45So the beautiful colors of  labradorite owe their existence to
7:49processes on some of the largest  and smallest scales on Earth.
7:54It took millions of years,  and over a thousand degrees,
7:58in the heart of a giant supercontinent,  to assemble just the right chemistry
8:03for just the right atoms to  move just nanometers apart,
8:08to create the most surprising flash of  blue in an otherwise abundant mineral.
8:13All of that might sound incredibly unlikely,
8:16but labradorite isn’t as  rare as you might imagine.
8:19These big, slow, and precise  processes are common enough
8:23in the Earth to have created  plenty of the iridescent mineral.
8:27So much so that it is mined in Madagascar and
8:30elsewhere into huge decorative  slabs and sculptures.
8:34And this month, Rocks Box  subscribers will be receiving
8:38their own piece of Madagascar’s  geological history,
8:42since we’re sending you a  polished piece of labradorite.
8:45Every month, Rocks Box subscribers get
8:48a premium mineral or fossil  sent right to their door.
8:51But the fun’s not just for subscribers.
8:53We also sell some of our greatest  hits for individual purchase,
8:57along with some cool merch.
8:59If you want to learn more or  browse some of our other offerings,
9:02head over to Complexly.store/rocks  to check it out.
9:07And thanks for watching!
9:09[♪ OUTRO]