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In this lecture we're going to discuss a 
very interesting anybody quantum effect 

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namely the phenomenon of super 
conductivity. 

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which is rather amazing field, because 
superconductors have a number of 

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remarkable properties, such as for 
instance so shown here the phenomenon of 

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levitation, I'm showing. 
A, a high-temperature superconductor, 

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wrapped up in a tissue to avoid heating, 
levitating on top of the magnet. 

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So, and this phenomenon is actually 
unique in this forum to superconductors 

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based on expulsion of magnetic flux or 
Meissner effect. 

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So here I'm actually showing you a movie. 
Of the same effect which was recorded by 

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my experimental colleague Johnpierre 
Paglione in the Joint Quantum Institute. 

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So and you here see a superconductor 
moving around on top of a magnet. 

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So this phenomenon of levitation is 
indeed, well, quite remarkable, and is 

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oftentimes used to to impress visitors at 
various science shows. 

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but it's just one of many exciting 
phenomena that appear in relation to 

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superconductor, and some of them we're 
going to discuss later today. 

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But let me just mention that 
superconductivity is an extremely rich 

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field, so suffices to say that it has so 
far resulted in about ten Nobel Prizes. 

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This that have been awarded for various 
discoveries of superconductivity and 

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furthermore there are definitely a lot of 
major mysteries that still remain in the 

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field. 
And obviously we can not discuss 

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everything in one lecture so I'm going to 
focus on the of the lecture on a key 

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theoretical concept that sort of 
underlies. 

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The theory so-called Bardeen Cooper 
Schrieffer Theory of Superconductivity. 

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And this is the phenomenon of Cooper 
pairing, which is responsible for to a, 

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to a large degree for the appearance of 
the theory . 

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But let me start with discussing the main 
property of superconductor, namely the 

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state of zero resistance. 
Which, is the reason why super conductors 

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is actually called super conductors. 
And so let me go back in time about a 

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hundred a little more than a hundred 
years ago to 1911, when this happy 

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looking guy, Heike Kamerlingh Onnes. 
was performing various low temperature 

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experiments to liquefy helium. 
And during these experiments he noticed 

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that the resistivity of mercury dropped 
exactly to zero below a certain critical 

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temperature of 4.2 Kelvin. 
So, this was very surprising. 

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And actually, it is very surprising, and 
also it should surprise you. 

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In particular, if you recall what we 
discussed in the fourth lecture, in the 

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last lecture last week, where we talked 
about the resistivity of metals. 

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And so I mentioned that in all real 
materials, there always are imperfections 

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that give rise to disorder, that in turn 
give rise to scattering and finite 

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resitance. 
So, what you would expect in a normal 

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metal would be that the resistance can, 
well, it can go down but you would want 

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it to saturate to a certain final value. 
[NOISE] If there is no localization. 

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If there is localization, it actually 
would shoot up and go to infinity, but 

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there is no sort of reasonable sort of a 
priori reason, why it would drop down to 

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exactly zero. 
Not to a small value, not to a tiny 

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value, to exactly as a zero and this is 
what Kamerlingh Onnes observed and this 

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was the birth of superconductivity. 
It was the first time people, so 

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superconductivity, and it was truly 
amazing in fact, and in particular, 

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because of that he was awarded. 
the 1913 Nobel Prize in physics. 

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Now another effect which already 
discussed in relation to this levitation, 

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was magnetic flux expulsion. 
This is probably the second very 

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interesting phenomenon and well. 
If you if you have metal let's say if you 

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heat up this material up to room 
temperature, let's say and the 

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penetrating with magnetic flux. 
Well, the flux will, more or less, just 

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go through the material above the 
critical temperature and there will be no 

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significant distortion of the flux. 
So, it's sort of amazing phenomenon that 

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happens once you go into the 
superconducting phase, is that the 

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magnetic field now tries to avoid the 
superconductor. 

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So an, instead of going through it. 
It goes around it, and so you may say 

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that it's expelled from the super 
conductor and this effect is called to 

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the Meissner effect. 
So, returning to this picture of a high 

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temperature super conductor levitating on 
top of a magnet, what's actually going on 

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here. 
Is that the magnetic field lines are sort 

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of, go around, primarily go around this 
superconductor. 

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And you may see that this superconductor 
is sort of, is sitting on this on this 

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flux, because it's energetically not 
favorable for it to go down. 

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It would increase the energy of this 
system and therefore, it's supported by 

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this flux. 
Well just a short comment here, though, 

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is that I'm a bit oversimplifying this 
picture. 

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so as a matter of fact there is there is 
indeed this Meissner effect, but apart 

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from the Meissner effect, there is also a 
little bit of a penetration of the 

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superconductor by a magnetic field. 
But this penetration happens in the form 

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of so-called vortices. 
Which are if you look at the, let's say 

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if you look at the cross section of the 
super conductor, two dimensional cross 

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section. 
And sorry let me just plot it here, so 

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there will be the super conductor. 
And most of this cross section is 

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magnetic field free. 
But there are certain regions which are 

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very, narrow regions, very small regions, 
were you do have a magnetic field, sort 

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of penetrating through, very thin lines 
and these lines are called vortices. 

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So if, in a superconductor these, 
magnetic field lines are called vortices. 

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And these vortices are attempt to appear 
in the regions where superconductivity is 

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suppressed due to various kinds of 
imperfections, a disorder that we already 

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discussed. 
And this, in turn leads to the pinning of 

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this magnetic field line. 
So, as a matter-of-fact, if you performed 

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this experiment with a true simple type 
II superconductor, which allows these 

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flux, flux lines. 
You, you not only would be able to see 

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that it can be levitating on top of a 
magnet, you can actually turn it anyway 

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you see fit. 
You can turn it at any angle and still 

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going to sort of retain its position. 
And this actually even more impressive 

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phenomenon is due to these flux lines and 
the spin. 

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But you know, to discuss it further would 
be, it'd be going too far. 

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So, let me just stop here and say that 
all and all so this magnetic field 

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expulsion is responsible for this 
phenomenon of levitation. 

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On a, on a different note, interestingly, 
the Meissner effect, this expulsion of 

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the magnetic flux, on the theoretical 
side is to some degree equivalent to the 

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Higgs mechanism. 
That occurs in elementary particle 

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physics. 
I'm sure many of you have heard about the 

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discovery of so-called the God particle 
or Higgs particle. 

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Last year, but actually the mathematical 
theory of this Higgs mechanism, in a 

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different context of condensed metrics. 
Physics was put together before Higgs by 

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Phil Anderson. 
As speaking, I would call it 

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Anderson-Higgs mechanism. 
I'm not going to go into [NOISE] details 

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of why this expulsion of magnet flux is 
equal in to Higgs. 

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But, you may have heard that Higgs really 
is important to elementary particle 

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physics because it gives rise, because it 
gives rise to masses for some elementary 

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particles. 
Here you may see that the Higgs mechanism 

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in this form gives rise to mass of the 
magnetic field. 

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So, it becomes energetically unfavorable 
for the magnetic field to be inside the 

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superconductor. 
And well this energy, this energy 

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apparently for it to be there, is sort of 
proportional to the so called, 

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superconductivity order parameter that 
appears below the critical temperature. 

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So, I already advertised the fact that 
superconductors host an amazing variety 

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of various new phenomena. 
And the discoveries of this phenomena 

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have in turn led to these ten Nobel 
prizes. 

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And I list here these major discoveries, 
sort of hallmark discoveries in the 

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field. 
And the first one, I've already talked 

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about, this is Kamerlingh Onnes discovery 
of the effect itself back in 1911. 

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Then John Bardeen, Leon Cooper, and Bob 
Schrieffer, got a 1972 Nobel Prize for 

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developing a microscopic theory of super 
connectivity in the 50s. 

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Brian Josephson and Ivar Giaever, got the 
1973 Nobel prize for discovering 

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tunneling phenomena is a very interesting 
tunneling event in superconductors. 

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In particular quantum, right here, 
Josephson if he acts simple, Josephson if 

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you act other than you are talking about 
it, but's very interesting. 

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So, this guys made a major breakthrough 
in the field, I'm going to mention it in 

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the next slide, by discovering so-called, 
the family of high temperature copper 

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superconductors 
And finally just ten years ago Alexei A 

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Abriskosov and Vitaly L Ginzburg, along 
with Tony Leggett, got a Nobel prize 

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In particular, these two gentlemen have a 
put together a theory of vortices 

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topological excitations, that appear in 
these quantum fluids. 

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And I'm also including here a future 
Nobel prize, which almost guaranteed to 

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be awarded sometime in the future for a 
theory, of this high numbers of 

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superconductors, that I just mentioned. 
We don't really know yet the nature of 

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these guys/g. 
We know they exist and know a lot of 

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their properties, very unusual 
properties, but what's really going on 

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there, we don't know. 
So, maybe it's going to be you. 

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Who knows? 
But you should hurry because I think the 

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new experiments are getting us closer and 
closer to the to understanding the, sort 

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of uncovering the mystery of this 
high-temperature coppers. 

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In any case I want, what I want to 
emphasize here on this slide, is a very 

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large time gap between the discovery and 
the corresponding prize for, of the 

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different superconductor in the 
microscopic theory of superconductivity. 

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Which was put together about 40-50 years 
later, it's not for a lack of trying. 

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People have tried very hard, and couldn't 
succeed so it turned out to be very 

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difficult to explain the basic nature of 
superconductors. 

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Even though it took a while for the 
theories to provide an explanation of 

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superconductivity. 
The experimental work on this in fact 

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never really stopped since 1911 since the 
discovery by Kamerlingh Onnes. 

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And, the motivation for these experiments 
is really easy to understand. 

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So, as I mentioned of course a super 
conductor is are special in that, they 

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have exactly zero resistance. 
So they have no losses whatsoever. 

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And they are able to conduct electricity 
with no heating. 

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So, if we were able to have a 
superconductor at room temperature, such 

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a room temperature superconducting wires, 
would have been able to transport 

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electricity over large distances with, 
with no losses. 

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And this of course would have been great, 
especially now in the view of this 

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looming energy crisis. 
Of course now we transport electricity 

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from where we produce it, to where we use 
it, using well normal wires, metallic 

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wires. 
And those involve wide resistance and 

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heating. 
And so this heat, which is loss, so this 

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goes nowhere. 
So to have a room temperature 

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superconductor would be great. 
Unfortunately, we don't really know 

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whether such a material may exist, or 
whether it is possible at all. 

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There has been a lot of progress, growing 
materials, which have a much higher 

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transition temperatures. 
Then the first 4.2 kelvin superconductors 

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back here. 
So, this is the discovery of 

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superconductors, and this plot here is 
really a diagram, so here is the year 

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from the early 1900s. 
Up to almost now, and the points are the 

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correspond to compounds, with the various 
transition temperatures. 

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And so it, you see that for the first 
let's say 70 or so years the progress has 

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been really slow. 
But then in the, in the 80s, there is a 

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huge jump up to here, and this class of 
materials are what I already mentioned. 

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The high temperature superconductors, 
so-called Copper Superconductors 

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conductors, which are getting, which is, 
is somehow dangerously enclosed, close to 

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room temperature but we are not, they are 
not yet. 

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So, they're close, but you know, we still 
have about 100 kelvin to go. 

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Now and also very recently, there was a 
discovery of a new class of a material 

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so-called iron based superconductors, and 
it does also look promising. 

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but so far, although this phrase to 
increase the transition temperatures is, 

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in superconductors hasn't really involved 
much theories,. 

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It's mostly about experimental magic of 
growing materials and trying out 

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different compounds. 
To emphasize this fact let me actually, 

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in the last slide in this segment, let's 
actually mention a guy who was really, 

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really good at finding new super 
conductors. 

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He was an experimentalist working at Bell 
Labs. 

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His name was Bernd Matthias. 
and he was a legend in in this business. 

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And he, back in the 50s and 60s, he came 
up with a set of rules to help others 

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discover new super conductors and here I 
just list those rules. 

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I don't expect you to understand their 
significance of actually, they're not, to 

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be taken too, too seriously, because, in 
these high-temperature superconductors 

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most of these rules are actually 
violated. 

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But let me go over them, so he said that 
high symmetry is good, cubic symmetry is 

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best, wants you stay away from oxygen. 
Stay away from magnetism, stay away from 

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insulator, by the way, this is all we 
find in high-t superconductors. 

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And impose the most important rule due to 
Matthias was to stay away from theories. 

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And this was really bad we know because 
it was deserved, because again for many 

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years there was no theory of super 
conducting. 

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But fortunately the situation has changed 
in, in the 1950s, when Leon Cooper and 

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then John Bardeen and Bob Schrieffer, 
came up with the, a very, clear 

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explanation of the effect. 
And in the remaining three segments we're 

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going to go over, this explanation but in 
the next video I'm going to mostly talk 

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about the preliminary materials we need 
to know to get there. 

