Dragonfly TV is all about nano, and
this time we're facing off on the hockey
rink, chasing down
butterflies and discovering their sticky
stuff on the ocean floor.
Major funding for Dragonfly TV is
provided by
the National Science Foundation,
supporting education and research across
all fields of science and engineering.
The National Science Foundation, where
discoveries begin.
Hi, I'm Eric and this is Dragonfly TV
Nano. This episode is brought to you by
the small stuff that everything is made
of atoms. Here I am looking
pretty good pretending to be a carbon
atom. Nanoscale is small, but atoms are
even smaller. See, I'm less than one
nanometer in size. And when I hook up
with my carbon atom buddies, hey guys,
we bond to become a molecule.
Carbon atoms can connect in ways that
form different shapes or structures. This
molecule here is graphite, like this
stuff. It's soft and breakable,
and it's used in pencils.
Now look at this diamond molecule.
It's hard to believe, but diamonds are
made of carbon also. The diamond
molecule's structure makes it one of the
hardest things on Earth. And if I write
on the lens with this diamond, Eric,
stop. Kidding. If I wrote on the lens
with this, I'd ruin it with scratches.
Nanotechnology lets scientists use
special carbon molecules like these
buckyballs and carbon nanotubes to make
cool new products. And Next up,
Jordan and Nick find out what these
nano-sized particles can do for a hockey
stick. He shoots. He scores.
One, two...
That's my buddy, Nick. And I'm
Jordan.
We play sports together all the time.
Good game. That's how we roll. That's
how we go
Is that a new hockey stick?Yeah, CNT.
CNT, what does that mean?Carbon nanotube.
Well, that tells me a lot. Well, first
there was the wood sticks, then
composite. Now there's the carbon
nanotube stick. It's supposed to make it
stronger and better. What is a nanotube?I
don't know. Can you see them?I don't
know. Want to cut it open and see if
there's really tubes inside?No, it's
brand new. I think we should test it to
see if it's any stronger or better. Well,
I think we should find more about carbon
nanotubes first. OK.
Nick's question made me think of that big
model of a carbon nanotube that's hanging
at the Museum of Science.
Carbon nanotube. Cool. We're inside of
it. Hey, guys. I'm Tim. I'm one of the
nano guys here at the museum. I'm Nick.
He's Jordan. You're not really a nano
because nanos are small. That's true. A
nanometer is way too small to see with
the naked eye. Yeah, I just got a new
hockey stick made of CNT. We were
wondering what the nanotubes do to affect
it to make it better. Good question.
Follow me. Now, you guys remember the
balloon model downstairs?Yeah. Yeah
Another good way we can make a model of
that structure is using chicken wire.
Carbon atoms often arrange themselves in
big honeycomb patterns like this, into
big sheets. And the carbon nanotube is
just the same structure that's been
rolled up from the sheet into a tube. Why
don't you guys see if you can get the
nanotube to support the weight of the
bowling ball?Whoa. I
notice that doesn't work at all, right?
This one's real sloppy and it collapsed
easily. Now let's try it with the other
model rolled up the other
way. Exactly. Now remember, we started
with the same thing. They're both just
chicken wise. But by rolling it up in a
different way, by changing the shape,
we've changed the properties. So in the
hockey stick, they'd probably use the
more flexible and light one. What makes
the carbon nanotube any better than the
rest of the hockey sticks?Well, my dad
said it was better than the wood stick.
You're not just going to take his word
for it. I guess we could test all three.
Let's go.
We went to the hockey rink to do our
tests. We set up a radar speed detector
and compared our CNT stick to other
sticks. I took 10 shots with each stick.
In the first round, I have my old wooden
stick. The second round, I have this
composite stick. And last is my new CNT
stick. It's composite stick with a bunch
of other stuff and carbon nanotubes.
Let's see which one shoots the fastest
slap shot. Take a best shot
Take a best shot Take a best
shot, baby Take a best shot
Now let's make a graph of this. Okay.
We discovered that the average speed of
the wood stick was 40.5 miles per hour.
The composite stick had an average of
fastest average speed at 44.5
miles per hour. Well, it looks like the
CNT lived up to its expectations. It
handled really good, too. It's fast and
light. I'm still not convinced this is
strong, so I'm gonna try toNo, that's not
scientific. I didn't know a lab that can
test its strength, though. All right,
let's go.
Why did the CNT stick, help Jordan slap
shot?Well, like Nick,
I would love to smash this and see what's
inside.
Ah But I bet Jordan and Nick find a
better way to break these in the lab.
Anyway... Have you ever noticed how
much the word nano shows up these days?I
mean, there are ads for nano hair
dryers, shampoos, umbrellas. There's even
a car named Nano. But I wonder how
many of these things actually use
nanotechnology?Or do their nano names
just mean that they're kind of small?Hmm
Something to think about. Now let's head
to the real nanoscience frontier with
today's Nano Challenge.
How can you get into space
without a rocket?Can you
figure it out?It's a tough one, but I
believe in you guys, and I'll be back
with a clue later on. But now it's back
to Jordan and Nick. who are about to bust
up some hockey sticks in the name of
science. Me and Jordan have
known each other for ten years. What I
like about Nick is he's nice. Jordan and
I are always together. I'm better at
hockey than him. He's not, like, the
greatest skater ever.
I am probably better at him in
multiplication and division. We sometimes
are competitive. We will always end the
game nicely. We
weren't convinced that the CNT stick was
actually stronger, so we went to see Joe
at Harvard, who has a machine in his lab
that tests the strength of things.
Hi, Joe. Thanks for having us. We bought
three sticks of wood, a composite, and a
CNT. We want to test their strength. OK,
over here I have three sticks just like
the ones you brought in today. Why don't
we test these instead?Could we weigh
these?Because the CNT stick felt larger
than the other two. We have a scale right
here. We made a chart to compare the
weight of the three sticks. The CNT stick
is .67 pounds. The
composite stick is
.85 pounds. And the wood stick
is 1.15 pounds. All right,
since we've weighed them, let's go break
some sticks. This is a strength
testing machine. We'll be able to
determine the load that the hockey sticks
actually break at. We started by breaking
the Santee stick first. Well, that's
cool. Whoa. Whoa.
That's so good. 1,422 pounds it took to
break. Can we do the composite one now?
Sure. The
composite stick broke at 1505
lbs, and the wood stick took
Looks like the CNT wasn't what I thought
it would be. This one's thinner. Thin
layer. Yeah. Fiberglass is like, we're
spiked. It's not even hollow.
It's solid wood. The fact that the wood
stick was solid explained the weight
differences, but it brought up another
question. If all the sticks weighed the
same, how would their strengths compare?
Joe showed us a way to compare sticks
that takes their different weights into
account. All you have to do is divide the
pounds of force by the stick's weight
using Arnie's strength rating. CNT had
Composite had
and wood had
like the clear winner is CNT, like I told
you. Let's look at the CNT stick to look
if there's nanotubes inside. Well,
I don't see anything. How about you?
Nothing. I guess they're too small to
see. So Joe
sent us to see David Belle, a scientist
who uses microscopes to see things on the
nanoscale. Hi, guys. How are
you?Hi, you must be Dave. What's that?
That is what's called a helium ion
microscope, and that allows you to look
at very small things. I couldn't find the
nanotubes inside his hockey stick, and we
were wondering if you could help us. So
what I did was I grabbed a piece of your
hockey stick, and I matted it on a sample
holder, and I put it into the microscope.
And there are these fibers. Do you see
anything that looks like a carbon
nanotube?That little line right there.
Well, those are carbon fibers in
diameter. They're about 5 microns. So a
nanotube's going to be a lot smaller than
that. It's possibly that little thing
there. It's hard to tell, but to see it
with a little bit more clarity, I decided
to put a little piece of your hockey
stick in another microscope with even
higher resolution.
So this is a transmission electron
microscope or TEM, and I put a piece of
your hockey stick in this microscope. And
I saw this. Can you see that line?Yeah.
So that looks like a bundle of carbon
nanotubes. It's about 10
nanometers in thickness. That's the
nanotube?That looks like a bundle of
carbon nanotubes. Can you put carbon
nanotubes in other things?Sure, you can
put carbon nanotubes in a lot of things.
Tennis rackets?Yep. Baseball bats,
lacrosse sticks, snowboards, kayaks,
skis, bikes. Yep, sounds like you've got
a lot more to investigate.
I wish I had CNT gear as a kid. My first
pair of skis weighed more than I did.
You're exaggerating. Well, yeah,
but they were really heavy.
Anyway, carbon nanotubes aren't only
about making things lighter and stronger.
Their special structure makes lots of
other new products possible. CNTs can
help store energy, help cancer medicines
work better, and scientists have
built a carbon nanotube that acts like a
radio. Yeah, it's
of this pin. Hard to believe,
but they've already done it. A
nano radio. How amazing is that?
Think about how small those dials must
be. Really small. Speaking of
cool technology. Have you thought about
how to get to space without a rocket?
Here's a hint. Part of this device is so
long it could wrap around the planet 2
answer is coming up soon. Next up, we're
going to see a mimic. Yeah, you know
someone who likes to pretend that there's
someone else. OK, actually,
she's a nanoscientist who looks at how
nature makes things and then figures out
how to imitate those designs. Remember.
Imitation is the sincerest form of
flattery. Yah!
Let's go! I'm Leslie Hamming at
Northwestern University, and I'm a muscle
scientist. Not these muscles.
These mussels. I study mussels because
these guys have very, very fascinating
sticky properties. They can stick to
everything, wood, rocks, and even each
other. Inside the mussel's shell is a
tongue. Every so often it comes out of
the shell and it deposits its glue. Our
lab is working on ways to copy the
amazing glue of these mussels.
But if you can imagine if we made a
Band-Aid out of the mussel's glue. We
could have an everlasting Band-Aid. As
test subjects, muscles are very
well-behaved. The muscles are very easy
to work with. They just kind of sit
there. Just sitting around. Oh, my. It's
really not practical to get our glue
directly from the muscles. So instead, we
make it chemically. We want to mimic what
nature has already created. Admittedly,
we are pretty far off from her elegant
solution. But we're getting close.
So after we make our chemical version
of the glue, we coat different
surfaces with it and test its adhesive
properties. We have found that it's one
of the strongest bonds in nature.
Here's an image of tiny nanoparticles
that have been coated with our muscle
adhesive, and the goal of this was to
reinforce plastic with. These muscle
adhesive coated particles and this
way we can make super strong plastics
that might have the potential to replace
metal in airplanes and cars. I was a
professional triathlete for two years and
I was on the US national team. To be a
good scientist, it's really important to
have passion for what you do because it's
that desire that will keep you coming
back to the lab and discovering new
things.
Mussels are underwater engineers,
and I just thought they tasted good. But
they are masters at making nano-glue
that works underwater. We like to
call ourselves gluologists. Get
it?
Gluologists.
Leslie and lots of other scientists make
good use of nature's designs. And why not?
Nano and nature has been getting better
and better for millions of years.
Consider the spider web. Some spider
silk is 10 times finer than human
hair, but by weight it's stronger than
steel, thanks to its nano
structure. By the way, spider webs hold a
clue for the nano challenge. How do you
get to space without a rocket?A spider
web into space?Not quite, but
keep your brain spinning. And now it's
time for the Zoom cab.
Must be Zoomer time.
We're heading toward an iridescent
Madagascar moth. Now the wing looks
painted from here, but Zoomer knows
there's a lot more going on than that. So
let's zoom in a little closer.
Check it out. The wing is covered by
layers of tiny folded flaps, and these
fragile flaps actually help the moth to
fly. And as we get a little
closer, we see that each flap is
covered with delicate ridges. Kind of
look like potato chips, but I would not
recommend munching on a mouthful of moth
wings. Let's zoom
way, way
in. You see those black spots?They are
only 100 nanometers wide. And
they're nothing but pockets of air, but
they reflect light in surprising ways to
create the moth's iridescent colors. Oh,
I know, buddy. You can't zoom any
further. Let's head on back.
Now Emily and Julie take on the blue
Morpho mystery. Nano can turn up
in surprising places. Butterfly
'cause I can't find nothing bad aboutyou.
I'm Emily. And I'm Julie. And we
love butterflies!
Mono Sarah have very unique colors.
There's more peach there and darker
there. They're polka dotted. Yeah, I like
that part. Hey, I know a place where we
can find tons of different butterflies.
You do?Yeah, let's go there. OK.
We decided to take a trip to the
Butterfly House at the Museum of Life and
Science. There were hundreds of really
pretty butterflies, all with different
colors. We tried to find as many
different colored butterflies as we could
and took pictures of them. Whoa, look at
the green one. Yeah, no, that one looks
so cool. Let's look at that one. We found
a couple of butterflies that had died. We
looked at the color of their wings. One
was a blue morpho. We noticed that some
butterfly wings change color when you see
them at a certain angle, but the color in
others always stayed the same. I
wonder why some butterfly wings
do have the change when you tilt it. But
I wonder why some don't. Let's go find
out. Hello, I'm Leon. I'm the
entomologist here at the museum. That
meansHe's an expert on insects and
butterflies. You might want to know that
the Latin word for butterfly is
lepidoptera. What?Lepidoptera, which
means scaled wings. Scaly wings?
Yeah, that's right. Why do the
butterflies have different colors in
their wings?Well, all animals have
something called pigment inside of them,
and that's what gives them their color.
Butterfly. 'Cause I can't find nothing
bad about you In your case, you're
holding the blue Morpho. They get their
colors from iridescence, which is a trick
of light. That's that metallic sheen that
you see. Is that something that you've
seen before?Oh, yeah, in the parking
lots, the oily puddles. And I've seen it
when I've been doing my hair in the
shower. Soap bubbles. Yes. In fact, if
you can figure out what's going on in
soap bubbles, you can figure out what's
happening in iridescence. Cool soap
bubbles. Why don't we try that, Julie?
Let's mix the bubble formula. Our recipe
was 1 cup water, 2 tablespoons of
glycerin, and 4 tablespoons of dish soap.
We could see the colors more clearly when
we looked at the bubbles against a black
background. Look at that. Look at that
waterfall there. It's so cool. It looks
like a rainbow. If we look at it, it's
really tie-dye at the top. Yeah, and like
it's swirling together, and then it's
coming down. It's funny how we didn't use
anything in our formula that was
colorful. So then where does the colors
come from?I guess the color would have to
do something with how thick it is. If you
tilt it this way, there's different
colors, darker and lighter. So there's
got to be something that's similar to the
butterfly wing in the bubble. We
realize that gravity is pulling the soap
film down towards the bottom of the wand.
The lower part of the film gets really
thick. As water evaporates off the soap
film, it thins out too. So at the top
it's super thin and black until
eventually it pops. We went to tell
Leon what we found out. So how did the
bubbles go?We noticed that the color of
the bubble has something to do with the
size of the bubble. Okay. And we also
know that there must be something like a
soap bubble inside the butterfly wings so
the butterfly can have its color. You may
have to take a closer look. Maybe you
guys should go and see my friend Fred.
He's an expert in these sort of things.
We'll take that advice. Thanks, Leon.
We visited Dr. Fred at Duke University.
He's a biologist who studies butterflies.
Well, hi, girls. Welcome to my
laboratory. I'm Fred, and I hear you've
just come from the museum. We found some
similarity between soap bubbles and
morpho butterflies. The blue color on the
morpho is made exactly the same way that
the different colors in soap bubbles are
made. And I can show you this with our
special microscope that we have. Let's
go. And that's where Fred's ultra
amazing scanning electron microscope
comes in. The nanoscientists who use it
all the time mainly just call it SEM.
We got the SEM to create images of the
blue morpho wings at the nanoscale.
I'd never guess that this butterfly
wing would have scales just like that.
It looks like a lot of little lines and
ridges on them. What are them?These
ridges have these very fine stripes on
them so that when light hits them, only
blue light is reflected back. And that's
what makes the morpho blue. So there's no
pigment. That's how close are the ridges?
Those lines are almost exactly 200
nanometers apart. And a nanometer
is--1
billionth of a meter. So it is
really tiny. The thickness of the soap
bubbles is almost exactly that thickness
between those ridges, and that is why the
soap bubble has those same colours that
we see on butterfly scales. So what would
happen if we filled in the ridges of the
butterfly wing?Well, one way in which you
can answer that question is to put a
little drop of acetone on the wing. So
the acetone fills up the space between
the ridges. In order to find out how that
works, why don't I give you a bunch of
butterfly wings to take with you and you
can experiment with that at home?OK,
thanks. We picked out four wings,
two that we think are colored by pigment
and two that we think are iridescent.
First, we recorded the wing color before
we put on the acetone. All right, let's
try the red wing. We think this one's
pigment really didn't do anything. Just
looks soggy. All right, now let's do the
blue morpho. We think this is iridescent.
Wow. Look at that. It turned to
green. That means the blue morpho is not
getting its color from pigment. It's
getting it from iridescence. Yeah. So now
let's put the acetone on the light blue
wing. We think this is iridescent. That
looks exactly like what happened there,
except it turned dark green. So the
color changes because it's got that
iridescence in it. Yeah, so let's put the
acetone on the last green wing. We think
it's pigment. Wow, it turned
yellow. And we thought
it wasn't. But what if it's colored by
pigment, too?Maybe it has both.
So maybe there are a few different types
of iridescent wings. Some that you can
see with the naked eye and some that you
can't see. Wow, nanostructures have cool
colors. I wonder what else gets the
colors from nanostructures. Maybe peacock
feathers. Or the insides of a seashell.
Or my mom's makeup. That gives me an
idea. Come on, Julie, let's pick our
colors. Okay.
Girls, they wanna have fun Oh, girls,
they wanna have fun
Oh, it's iridescent, just like the
butterfly wings. Maybe the makeup has the
same structures as the butterflies do.
So, how something is structured on the
inside can change the color we see
on the outside.
There's a really cool invention in
progress that uses this idea.
Nanofiber shirt, please.
Yeah, right, Eric. What a really cool
white shirt. Uh, but don't let the
surface fool you. Scientists are
developing a nanofiber that will make
clothes that can change color whenever
you want, just with a tiny electrical
charge. No, don't worry, you won't feel
it. But whenever you want to change the
color of your shirt, you just flip a
switch and zap the fabric. So,
shirts that change color. What'll be next?
And what won't be affected by
nanotechnology in the future?Planes,
cars, blenders, staplers, pens. Wait a
nanosecond!
Would I want to know if a product was
made with nanotechnology?That's a very
good question. Does that mean it would
cost more?I think it's important for
products that are used with
nanotechnology to have labels. If a
product had nanotechnology in it, I think
I would definitely want to know. I think
it would depend on what product it was so
that I would know, like, if it was food,
I probably wouldn't want nanotechnology
in it. Yeah, it's more important to know
if it's in your food, because that
actually goes in your body. But if it was
something like sports equipment, I don't
think I would mind. I think my dad's
tennis racket's made out of carbon
nanotubes. It could be cool to own
something with nanotechnology in it. If
they're putting nanotechnology out on the
market, there should be a clear
definition between what has
nanotechnology and what doesn't. I
wouldn't really buy something if I didn't
know what's in it. Hmm, I
will have to think about that.
Click on over to the Dragonfly TV website
at pbskidsgo.org. Stream a cool
DFTV video, try your hand at the new
Nanobots game, or tell us what you think
about nanotechnology. It's your place to
share your ideas. To answer our
Nano Challenge, let's start with a pop
quiz. So how do you travel into space
without a rocket?Is it A,
a transporter beam, like the one on Star
Trek?I'm giving it all she's got,
Captain. B, a giant
balloon filled with anti-gravity gas.
Whoa. Or is it C, an elevator that goes
It's C, an elevator that goes all the way
into space. Did you get it right?The
space elevator would use a really, really
long cable to carry cargo from Earth to
space. Up and away,
boys. Before carbon
nanotubes came along, scientists couldn't
figure out a way to make a really long
cable that wouldn't break under its own
weight.
Next time, I'm taking the shuttle.
But carbon nanotubes are so light and
strong, they can be used to make a
ribbon-like cable that's just three feet
wide and as thin as a sheet of paper.
So I don't know about you, but I'll be
buying a space elevator ticket the minute
they go on sale. I'll be the guy in line
with the sleeping bag and the space
station or bust sign.
See you soon on Dragonfly TV Nano. Anyone
going to the space station?Need a ride
over here. There's no use
giving up because there's so much you get
to ooh But don't worry what people say
because it all day plays on you ooh So
get up, step up to the
plate And take a best shot
Take a best shot Take a best shot,
baby Take a best shot
There's no use giving up, take a best shot
Major funding for Dragonfly TV is
provided by
the National Science Foundation,
supporting education and research across
all fields of science and engineering.
The National Science Foundation, where
discoveries begin.
PBS Kids.
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07x02 - Structure of Matter
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Pioneered a "real kids, real science" approach to children's science television and led to the development of the SciGirls television series.
Pioneered a "real kids, real science" approach to children's science television and led to the development of the SciGirls television series.