Preparing video...
0:00 / 0:00
Dr. Andy Goldfinger: Quantum Theory and G-d
826 views
Project Inspire is a non-profit organization that works to inspire thousands of Torah observant Jews to reach out to their less affiliated friends and neighbors. For more information on how YOU can get involved, go to projectinspire.com. SUBSCRIBE to get the latest from Project Inspire: http://bit.ly/1Ntl9rs Project Inspire on INSTAGRAM: http://bit.ly/1TiTAYX Like Project Inspire on FACEBOOK: http://on.fb.me/1QmzWIT Follow Project Inspire on TWITTER: http://bit.ly/1S3CYFN
Categories:Torah
Comments(0)
Transcript
Auto-generated transcript. Not time-synced to the video.
this is the year 5780
and it is tamuz and
many of us are quarantined because of
the
coveted pandemic
because this is being recorded um
it's likely that some people will be
watching this a number of years from now
and we'll kind of know how the coveted
pandemic
panned out no pun intended
and uh it's something that we don't know
right now
so we here in 2020
during the pandemic are living with a
lot of uncertainty and just not knowing
where things are going
and it's interesting that that's sort of
going to be the
the theme the main theme of the talk
that i'm going to give right now about
quantum theory and how quantum theory
and
torah and god sort of come together
um but before i i start i want to
um start by doing a little experiment
with you
and i brought along a cup just a cup
like many of you may have around the
house an ordinary
uh drinking cup as you can see
um and uh what i'm going to do
is take a coin in this case it is a
united states quarter
and i'm going to drop it into this
ordinary cup
and you won't be surprised to learn that
that quarter is now inside the cup
i'm going to take it and i'm going to
place it over here
on my extender and we'll just leave that
there for there for a while
as that experiment goes on what is
quantum theory
where does it come from when
physicists began to look at
very very small things in the world and
by very small i mean
um smaller than you will see through
your ordinarily
ordinary microscope that you would have
in a
college or in a in a high school biology
class
they discovered that they behaved in a
very in a way
very very different from from what we
are used to
in our ordinary lives um
i have over here a pen um it's one of my
favorite pens i buy pens by the pound
from a surplus company and i never know
what i'm going to get
and this one says i don't know if you
could see it the
student organization for the advocacy
of psychology have no idea why it says
that
but if i take this pen and i place it
somewhere
such as on my hands i have pretty
pretty good confidence that a few
seconds later it will be on my hands
we are used to this sort of behavior of
things in our macroscopic
or large world and physicists discovered
that when you get to very teeny things
like electrons we talk a lot about
electrons
that they behave very very differently
and in the 1920s
a number of physicists with names of
schrodinger
heisenberg dirac
uh paulie uh bohr
one of my favorite physicist niels bohr
um
uh began to try to make some sense out
of what was
happening in this in this world this
very small world and one of the places
where they started
was looking at light what is light
now you are all seeing me by the light
that is reflected from my face and going
into the little camera
on the top of my computer what is light
um a little surprising
that um light has been a metaphor for
knowledge
going back for for a very long time we
talk about
shedding light on the subject and we
talk about the enlightenment
and physicists have always been
fascinated with light and wondering
what it is now by
the end of the 19th century it was well
established
that light was a wave
much like the waves that undulate slowly
on the surface of the ocean
or that undulate rather roughly on the
surface of the ocean and i was once in a
ship in a hurricane on the ocean i can
tell you it was not
soft undulation
but we have an idea for what waves are
and how they behave
okay and i made a little picture here
that talks about one of the behaviors of
waves and i wonder if
you can see it here is a ship this is an
actual photograph of a ship
and from this direction ocean waves are
coming
and behind the ship here
the waves sort of bend around it
and that is a phenomenon called
diffraction
and that was discovered using light
light is subject to diffraction
and it is one of the proofs a real proof
real proof
that light consists of a wave
then in the early um
20th century uh
there were some very strange experiments
that showed light had some other
strange behaviors that we won't get into
in too much detail tonight
and there was a very bored young patent
clerk
in burns switzerland who came out with a
way of explaining
why the light was behaving in this very
strange way
and his name was albert einstein and
for his explanation of this he won the
nobel prize
and he explained that light was behaving
in that
kind of strange way because it's not a
wave
it's a particle light is a bunch of
particles
so that the light that comes into my eye
is a bunch of particles
little particles which we now call
photons and photons behave very
differently
than waves here i have an example of my
attempt at drawing a ship
and in this my attempt at drawing the
ship we have some particles that are
being shot at it
and it blocks some of them and others
get by
but there are no particles occurring
over here
because the particles can't get through
the ship and
and we can see that
phenomenon and particle phenomenon are
very very different and the question is
well what is light is it a wave
or is it a particle and this really was
very mystifying to physicists
because they did experiments that proved
conclusively
that it was a wave and they did other
experiments that proved conclusively
that it is a particle well which is it
and the answer seems to be both
well just a minute both of them but
they're contradictory
you can't have something which is a wave
be a particle
you can't have something which is a
particle be a wave
it's got to be one way or the other uh
why does it gotta be that way
my brain in which i'm used to various
things in my daily life
in the world of large things like pens
um convinces me that contradictory
things cannot occur
um this principle that
something can have contradictory um
properties was called the
complementarity principle
advanced by niels moore and his and his
students
and nowadays um it is
firmly established that light is
a wave and it is also a particle
and if you don't like that well
too bad that's just the way it is
this was the beginning of quantum theory
and it has been said that if you are not
disturbed
by quantum theory you do not understand
it
now from the point of view of jewish
learning
is there anything that we run into like
this
anyone who has studied the talmud
uh
you see that there are great scholars
who disagree with each other
in some very fundamental ways
and how do we deal jewishly
with these disagreements they can't
both be right if they disagree
in some fundamental ways so we have a
principle
a lover eluded
this and this are the words of the
living god
contradictory things can both be
true i don't like that
most of you probably don't like that any
physicists in the audience and i'm raise
your hands you're a physicist
well i don't see any hands so i guess
there are none but even physicists are
are are are disturbed by this
but they have to get on with their life
there was a famous physicist who said
about the
problems people have with quantum theory
and one
area in particular which we won't get
into he said
shut up and start calculating because
when they do the calculations they all
come out right
uh next to happen in
in physics was that there was a man
named werner heisenberg
and he was a german who was a
student of niels bohr who was danish
and he formulated something we call the
heisenberg
uncertainty principle and that gets back
to what i started at the beginning of
this talk that
we live with uncertainty um
his old joke is what is the heisenberg
uncertainty principle the answer is i
don't know
it's not a very good joke but i'm a
physicist and we've never been known for
being socially adept
heisenberg uncertainly uncertainty
principle says a very
simple thing if i have a particle um
an electron i can know
with as much accuracy as i want
where it is i can know its position
i can also know with as much
precision or accuracy as i want what its
velocity is
but i can't know both of them at the
same time
if i know one precisely i can't know the
other one
and if i know this one i can't know that
one precisely
a little bit like light being a wave in
a particle
they don't sort of match and everything
um
now of course it gets a little more
complicated than this
i spoke about a particle with its
velocity
and its position it's also true of the
energy of something and the time at
which it happens
if i know exactly when something happens
i can't know its energy
and that has an amazing
implication which we'll get to a little
bit later
god willing
there's the old joke that heisenberg was
stopped by by a cop for speeding and
and the police officer says do you know
how fast you were going
and heisenberg says no but i know where
i
am uh maybe it's funnier in german
um this kind of uncertainty
bothered many physicists that you can't
know
both the position and the velocity of a
particle accurate at the same time
now you can know something about the
position and something about the
velocity
if i take this large object this pen and
i throw it
i can know its velocity with some degree
of
certainty and its position with some
degree of certainty
but as i get to know closer and closer
where it is
i lose my information in its velocity
but because it's big and because the
errors we're talking about are so
small i don't perceive this in daily
life
unless i am a physicist and physicists
we love this stuff now
let's look at some of the uh
consequences of this
and they get to be even more amazing
uh because of this
um randomness uh i haven't spoken about
randomness excuse me because of this
uncertainty
there is a randomness in in the universe
since i can't know where something is
and how fast it's going
i can't predict where it's going to go
perfectly
and this is actually seen experimentally
i take
an electron gun which is a thing that
shoots electrons and they
really exist they really they really
exist
and i shoot an electron and i shoot it
at a target
i can't predict exactly where that
electron is going to hit the target
i can say it'll probably be here and it
may be here with less probability
so maybe i take my gank my gun and i aim
it
more precisely then
my ability to prick where it goes gets
worse
the more closely i aim it the worse the
accuracy
of my shots we don't see this with a
real rifle again because the things are
too big it's really happening but the
things that are happening are are so
small
and what came out of this is that um
i can't predict what's going to happen
in the world
einstein did not like this he said
i can't believe that god plays at dice
now einstein also said another
interesting thing he said he studied
physics to learn how much freedom
god had in creating the world
what are the laws of physics that god
had to work with
all right uh from a total review point
from our viewpoint god created the law's
physics
and i spoke once with a rather famous
physicist i'm not at liberty to mention
his name because it was a private
conversation
um and he who said he was an atheist and
he could explain
everything in the universe the origin of
the universe everything to the laws of
physics
and then he sort of chuckled a little
bit and said
of course that raises the question of
where the laws of physics come from
and uh we both admitted that that was
a flaw in his atheistic reasoning
uh now from our viewpoint
from the viewpoint of torah jews does it
bother us that we can't predict what is
going to happen
does it bother us that
i can set up conditions exactly the same
way in two experiments
and different things come out
well to a physicist who believes the
laws of physics are primary
and that god is subject to the laws of
physics
as einstein apparently did
that can't be god can't play a dice
but to those of us who recognize that
god is the master of the universe
the fact that i can't predict what god
will do
doesn't bother me
you know um let's take a little baby
a little um i don't know 18 month old
child
and and she loves her mother and her
father
uh but she doesn't understand enough
about the world
to predict what's going to happen in the
family tomorrow like
um maybe it's gonna be a vacation so
they'd pick her up and they'd put her in
the car and drive her off on vacation
and she had no way of knowing and
predicting this is that disturbing to
her
no because the mother and father are so
fur
far much far advanced from her she
doesn't feel disturbed she feels
comforted
um i saw something once where they were
teaching um nurses
something they called the helplessness
gesture that if i said oh what am i
going to do what is the gesture
it's like what am i going to do you've
seen people what can i do
and where does this gesture come from
what does it mean when a little child
makes this gesture it means
mommy daddy pick me up
i will be comforted because you know
more than i do you have more power than
i do
you can understand things that i can't
but it doesn't bother me it comforts me
and in the same way
we physicists who try at least
to lead torah lives are comforted by the
fact that we live in a world where
god is calling the shots because we
don't really know how to do it so well
and it doesn't bother us that
what happens on the small scale is
unpredictable
completely unpredictable it's just
the way it is just like the fact that
light can't be both a wave and a
particle
and yet it is it's because well god made
the world that way and
that's the way it is you may not like it
okay but you're not running the world
all right
you'd like it a different way if i were
making the world maybe i'd make
different things
made the world a different way you know
i would have certain things to be kosher
maybe that aren't
which you know lots of people
eat these things and we're told we
shouldn't say that
we don't eat bacon because it doesn't
taste good
um we say that it's very good tasting
but
god said that we shouldn't eat it
because
we are to be holy in a way that are the
people are not required
to be okay a whole other subject to
discuss
now let's talk again about
this ability to not predict where
something is going to be
and we get into something which is
rather amazing
rather amazing if i have
a particle electron proton
uh even even something such as a um
i was using pens uh
i have some i have some um lab equipment
here jar mustard
that's reasonably heavy and i put it
somewhere
okay if i know
where it is and what its velocity is i
can predict where it will be in the
future
but now since i have the uncertainty
principle that i can't know both
and again with this jar of mustard it
looks like i know both
because the effects are so small that i
don't see them in my daily life
okay if i know where it is
i can't predict its velocity so i can't
predict where it's going to be the next
time i look at it
i look at it and it's here well if its
velocity is zero the next time i look at
it
oh i'm sorry i was below my screen i
look at it and it's here
if its velocity is zero the next time i
look at it it will still be here
but if i know it's here i don't know its
velocity so the next time i look it
could be here
or here or here or here and the longer i
let it go
the further away it can be the next time
i measure it
again with the mustard it's really there
it's just the effect is too small for me
to
to see and what we say
is that the particle spreads out
it was here and now
it begins to spread out
um physicists don't like
having um things that they talk about
qualitatively you know like it kind of
spreads out it kind of moves
smooshes this way it smushes that way
they don't like that they like to have
numbers for what they do
because physics is is based upon
experiment
as a professor of mine tried to
knock into my head that you don't think
in a room and just think think think and
come up with physics
and you need to be able to make
predictions
numerical predictions and test them so
the question is
is there some way that
um we could
find an equation or a theory that
explains
exactly how the things spread out
and the answer is yes we
come to a man named irwin schroedinger
who was a german
and i forgot to say something
so let me say it now the other person i
mentioned who was a german physicist
was werner heisenberg who came up the
uncertainty principle that i can't know
the position
and the velocity simultaneously and i
mentioned
that verner heisenberg was a student of
niels bohr who was danish
niels bohr was a danish jew heisenberg
was a
german and before world war ii
heisenberg was one of boer's students
when the war came um
the germans um took over denmark
and um niels bohr
was for a short time in copenhagen
uh he was considered so valuable as a
physicist
that the british managed to smuggle him
because he was jewish out of denmark and
they did it
by putting him in the bombay of a small
bomber something called a mosquito
bomber
with an oxygen mask and he was regarded
as so valuable he had a parachute too
that the orders of the pilot of the
little bomber were if you get attacked
by german planes
drop boar he has a parachute into the
north sea and will come get him
that's how valuable he was regarded and
you smuggled out that way unfortunately
his oxygen mask slipped and
oxygen when he landed he was unconscious
but he came out okay
thank god now before
the jewish boar was
smuggled out of copenhagen
his former student heisenberg went to
see him
and we don't know what happened at that
meeting
we do know that they got into a big
argument and the argument was so intense
that after heisenberg left they never
spoke with each other
again but what happened there we don't
know
there is a play called copenhagen
about that meeting that was made into a
movie called copenhagen about that
meeting
which is done in such a masterful way
that you still don't know what happened
heisenberg went back to germany where he
was
fairly well known and established nazi
and he worked on what was going to be
the
german atomic bomb project
and in doing the calculations
of what you had to do to make an atomic
bomb he made
a a very big mistake and as a result of
his mistake
it looked like it was impractical or
even impossible
to make an atomic bomb it would have to
be too big
it would have to be too big because he
made this mistake
um to this day
people wonder was it a real mistake
that heisenberg made which indeed is
what heisenberg
said after the war when he survived the
war
um excuse me no no was it really a
mistake this is not what heisenberg said
i'm sorry i take it back
was it really a mistake or did
heisenberg
deliberately falsify the calculation to
show the bomb couldn't be made
to sabotage the german atomic bomb
project and that is what heisenberg said
after the war
so he claimed after the war that it was
a deliberate mistake to sabotage
their ability to make an atomic bomb and
other people feel it was a legitimate
mistake that heisenberg made
we don't know what the truth is and i
always find it
ironic that in whether heisenberg
was really working for the nazis or
against the nazis
to this day is uncertain and
heisenberg was the one who formulated
the uncertainty
principle now let's get back to
schrodinger
schrodinger got interested in this
question of i have an electron
or a small particle and it begins to
spread out
uh can i explain
quantitatively how much it spreads out
so um the answer was yes
and schrodinger came up with an equation
to um enable us to do this computation
okay and um it's kind of interesting
what what this equation is called uh
it's called schrodinger's equation
and again since we determined that
nobody held their hands up there are no
physicists out there
every physicist has heard of
schrodinger's equation you hear about it
in physics
one or maybe physics two even though you
don't see the equation
but i'd like to show you what it's like
um it's uh it's not
a terribly complex equation now to those
of you who are not physicists or
mathematic mathematicians
this might look like a terrible mess
but in point of fact mathematics
is a language just like
other things are language and if
someone um were to observe
a person reading hebrew and they didn't
know hebrew
they would think how can this person
possibly read this
it looks like gobbledygook it looks like
nothing but once you learn
to read hebrew which by the way is not
terribly hard uh i was part of a program
where we taught people in five lessons
and they're reading hebrew because it's
phonetic it's actually much more easier
to read hebrew than it is to read
english
um the mystery goes away so even though
it looks like a terrible mess to people
who've never been exposed to
schrodinger's equation
it's not that difficult an equation and
anyone who would be a physicist who
would see this would immediately say oh
yeah shortening this equation
now just as an aside in the 19
in the 20th century 1980s i believe it
was
i attended a very small conference
at a s at an austrian chalet
in a place called alpbach and
uh it's in the alps and i was thinking
to myself oh it's going to be so
gorgeous seeing the snow and the alps
and maybe i could even go skiing now
i've only been skiing
twice in my life and what i did
i call skiing but a skier would not call
what i did skiing they would call it
falling
okay but maybe i could try it again well
that year
the alps got no snow
so we were up in this place alpbach
in this little chalet and there's no
snow for a whole week
now the conference ended on
friday afternoon in the winter
and there was a bus going back to
um i think it may have been innsbruck
uh or another one of the austrian towns
to take all the members of the
conference back
and they were going to fly wherever they
want to go but on a friday afternoon i
couldn't do that
so i was going to stay in my little room
in this little chalet
prashavas and i had my um my usual
traveling shabbos fair of grape juice
and matzah
and a very nice type of sausage
called serve a lot that i like a lot and
like the filter fish
and my swiss fudge cookies that i really
like
and i'm getting ready for shabbos and
you know
i hear something going on outside my
window people laughing
and and yelling and laughing and i look
out and what it is
is the bus is there to take the people
back to wherever they're going
and it started to snow and they're
having a snowball fight
and they're having a great time before
they get into their bus
and i'm thinking to myself i drove up
here
and it's now snowing i don't know how
long it's going to snow
but i know that to drive back which i'm
going to have to do
um saturday night when it's dark
i have to go over alpine roads
that have like a cliff on the side of
them with no railing
all right and i'm gonna have to drive
like this
and it was pretty scary you know and
indeed what happened was
thank god i did it and i'm here uh but i
did not drive
very quickly that i will say it was not
a very
rapid way down those down those
mountains and i was just afraid someone
would get some austrian would get behind
me who was used to that kind of driving
and start harking honking honking
but thank god no one did now why do i
mention this
because it was very boring the week in
the chalet nothing to do
and uh one day someone comes uh comes to
us
and says there's a little summit there's
a church down down the lane he was
walking
down the little trail little road
whatever you call it
and there's a little church down there
and there's a cemetery by the church
and he says you gotta see this okay
we followed him to the cemetery and
this is what we saw this is a tomb
stone okay and i don't know if you can
read
what it says over there but it says
erwin schwerdinger schroedinger
was buried there that was schrodinger's
grave
and on top of it it has a shorthand
there's ways of writing equations
sometimes in shorthand a shorthand
version of schrodinger's equation is
written above it
so you can all see it over there that's
the short shorthand version
of it which he's he's so famous for
and then we had a joke that we made when
we saw him which i'll explain a little
bit later
so that is my contact the schrodinger
now what does schrodinger's equation say
it says everything in the universe
spreads out
excuse me
i met abraca before i started talking so
it's okay
everything spreads out so if i have an
electron
over here i can't predict where it's
going to be
we say it spreads out that the electron
ceases to have a
definite position it shmushes or smears
out and everything in the world smears
out
all right electrons do
marbles do bagels do
and my wife used to say that the
consumption of bagels made me sort of
spread out in certain ways but we won't
get into that any further here
everything spreads out now the next time
i look for the electron
i find it somewhere it's not spread out
anymore
i can't predict where it's going to be
but when i look i find it somewhere
then it starts spreading out again it
starts spreading out again
okay now the logic here is going to be
a little difficult to follow so
please try to put your
thinking caps on and or your shake look
as the case may be
why do things spread out because
schroedinger's equation says
that everything in the universe spreads
out
and everything in the universe
obeys the schrodinger equation
everything in the universe in the
physical universe
everything obeys the schrodinger
equation
okay and says the things spread out
when i observe the electron i find it at
some particular place
it's no longer spread out
that cannot be explained
by the schrodinger equation the schroder
current equation which applies to
everything
in the physical universe
says everything has to has to spread out
when i look at is not spread out anymore
now physicists
have a term for this it is called
the collapse of the wave function
this is spreading out the
kind of form that the spreading ache out
takes is called the wave
function let's not get into why it's
called that it's like a wave
a function means like
um never mind
in physics in mathematics a function is
something which is like a curve as a
function
or a surface can be a function so it's
called the wave function it spreads out
this is called the collapse of the wave
function when i observe it
the wave function collapses to a
particular point
why does this happen well
schroedinger's equation implies it can't
happen
but why does it happen we're getting rid
we're getting a little used to the way
things happen in quantum theory right
now
and you see why it said that if you're
not disturbed you don't understand it
it's because of what is called the
classical observer
now when physics physicists use the word
classical
they talk about classical physics
they're talking about
physics before quantum theory
post-quantum theory is called quantum
physics what was believed before then
was called classical physics which is
now known to be approximately correct
but not really correct
the classical observer can look at
something and find out where it is in
classical physics you can look at
something and find out where it is
because in classical physics you didn't
have the
jordan reflection so the
act of observation by a person
by an observer makes the wave
function collapse to a point so i can
see the electron
there
let's go through some of the logic
everything in the physical universe
is subject to the schrodinger equation
schrodinger equation says that
everything in the universe
spreads out its wave function spreads
out
when i look at it as an observer a
classical observer
i see it in a given point the wave
function collapses and it's there
something has happened which cannot
be explained by the schrodinger equation
but extraordinary equation applies to
everything in the physical universe
uh what's going on here now according to
the physicists in copenhagen with niels
bohr
they came up with something which is
called the copenhagen interpretation of
quantum theory
and that is that the classical observer
makes the wave function
collapse because the classical observer
is not subject to the schrodinger
equation
anything subject to the schrodinger
equation can't make the wave function
collapse
you can't can't make it come to a point
so the classical observer
in other words me looking for the
electron make something happen that
can't be explained by the schrodinger
equation
but the schrodinger equation applies to
everything in the physical
universe
that seems to imply that me myself
and i the classical observer
there's something in me that is not part
of the physical
universe that is the classical observer
that when i observe it it is
somewhere and my act of observation
only by a conscious observer
makes the universe function in a way
that the laws of physics
cannot explain so there's
something in me that's not explainable
by the laws of physics
now physicists don't like this
so they have come up with some other
attempts at explanation
um one of them is what they call
the the infinite universes theory
and that is the electron starts here
and then i observe it here okay
well at the time that i go to observe it
all right uh my universe
that i'm in all right over here in
baltimore uh has the electron over here
but the instant that i i look at it
another universe comes into existence in
which
electrons over there and in that
universe the electrons are there and
another one it's over here
so at each instant of time an
infinite number of different universes
are produced
and the electron is a different place in
each one but it's still in one spot
and i interpret that as it's spreading
out in my universe but not in the
infinite ones
and i can never observe these other
infinite universes
all right to some physicists i guess
that's comforting
we learned in high school about the
scientific method
where you have to do experiments
for your hypothesis and do observations
to test whether it's true or false
the infinite universe's theory
cannot be tested because there's no way
we can observe these other universes
and therefore it's not subject
to test by the scientific method and i
might dare say it is not
scientific it is philosophical
it is a way of getting away from
something that disturbs us
which is that i can't predict what the
universe will do
and that i the human being have
something
in me which is not part of the physical
universe i have something which is not
part of the physical universe now to
those of us who
attempt to learn torah we've heard of
the nashoma
the soul the shama is a little bit of a
colloquial term because what we call
them the shama has
kabbalistically five different levels
only one of which is called the shama
so i'll say that's nashamah with the big
nun with the little nun
that's that's the whole kitten caboodle
doesn't bother me that there's something
in me
that is not part of the physical
universe because we believe that we have
a physical side
and um when the copenhagen
interpretation comes along it's just
well
okay no big deal just like the
randomness is
no big deal if you
are an atheist then it's a big deal
uh if you're the type of person who
denies there's a spiritual side to the
universe then it is a
it is a big deal now
i said that most of the quantum effects
that we're talking about
are things that apply only to very small
things
turns out that there are some quantum
effects that apply to
larger things too that used to be
that a person didn't encounter unless
they were
a scientist or a physicist and i'll
mention some of those
um
radioactivity
radioactivity consists of little
particles coming out of the nucleus of
an atom
so let's take for an example
o alpha particles alpha particles are
a little helium nuclei two protons two
neutrons
and a heavier atom the nucleus
suddenly this alpha particle may come
out of the nucleus
and zip out where i can detect it and
that is radiation
other types of common radiation are beta
particles
which are electrons and gamma rays which
are
photons particles of light but let's
talk for a moment about alphas getting
out of the out of the nucleus
what keeps them in you know
alpha particles are positively charged
and the nucleus is all made out of
protons all of which are positively
charged
and we know that positive
like charges has repelled each other
opposite charges attract
like charges repel each other so the
nucleus has
all of these positive particles in it
and they're all repelling each other
what keeps them in the nucleus
and the answer is there's a certain
force
uh this force is very strong the name
for it in physics is the following
okay the strong force
okay uh in modern physics we know
sort of uh i get this four forces
gravity
electromagnetic forces the strong force
and the weak force but we're talking now
about the strong force
the strong force only acts at short
ranges
and at short ranges it is stronger
than the force of the electrical
repulsion of the protons
so it holds the protons together when
they get close together the strong force
holds them together
and even though they want to jump apart
because they're all positively charged
it holds them together and it creates
what we call
a potential barrier it creates a
a a region in space that they don't have
enough energy to go beyond that
they can bounce around but they'll
bounce off the walls and so on and so
forth
okay um
it's almost like i took in my our
experiment
here a cup remember
and in it it's a quarter
sounds like it's still there why is the
quarter still there
because the quarter even though it's
spreading out
by a very very very teeny bit
uh can't come out because of the wall
of the cup but in the quantum world
something which is com confined
by what's called a potential barrier
something it can't get over
the the porter would have to get over
the barrier to get out
things that are kept in by barriers
have a certain probability of getting
out
now we know they can't we know that they
can't get through the barrier
so how do they get to the barrier
through the burial
they do and the physicists call this
tunneling almost like they tunnel
through the barrier
that's not what happens what happens has
to do with schrodinger's equation the
uncertainties a whole bunch of stuff
etc etc and um
beginning to beginning to get a familiar
how these things bother you
you're beginning to understand quantum
theory more and more and more because
you're getting more and more bothered
because how does it get out of this
now suppose instead of a quarter i had
some liquid helium three
helium is a gas and if it's liquefied
it's really cold and if i were to take
some some of this
this liquid helium which i don't have
and pour it into here
so that it's level okay maybe the level
was just up to there
in the was just up to there in the cuff
let's say
and put it down that helium would come
out of the cup
because it would tunnel through
and you can see this with this helium
now each particular hedolium atom
is is tunneling through but it's a big
enough effect that with a macroscopic
large amount of healing through you can
see this take place you can see the
tunneling
and it's amazing it just comes out just
comes out
um you know uh
we have a concept which is spoken of
especially in many uh hasidic tales
called
that there were people who had the
ability to live on higher
levels than most of us um
i was told by someone who had the
um merit to speak with the
satmar rebery rebuildish zafano lebracha
and i was told that in person it didn't
seem like he was in this world
he was it was somewhere else uh there
are people who live
differently mike my review the boston or
rebbe
sometimes knew things about me that had
happened
and when he would see me sometime later
he'd say
this actually happened why were you so
upset on such and such a day
even though i was in a different city
this is not what we call esp or mind
reading or
anything like that what it is is
something
else and what that is i don't know it's
a sensitivity we have we don't have
we i don't have and there's something
called pizza saudera
that there were people who seem to be
able to come from here to here very
quickly
and one of the things that happens with
what's called quantum tunneling
that bothers physicists more than the
tunneling itself
is that when the particle
tunnels from here to here it does it
instantaneously and that's not allowed
by the laws of physics
goes faster than light things can't move
faster than light
how does it do that well i have no idea
and physicists don't and similarly for
those
great great people who had clitzes
anderach and can get from here to there
in ways that i don't know what it is
i don't know what that is either uh
um there's a lot i don't know a lot i
don't know
and when you get to quantum mechanics
there's more and more you don't know
well schroedinger came up with a
scenario
for what the way that a quantum
mechanical effect
can affect a large object
and he did this what's called a thought
experiment he didn't really do
this so don't get angry at me for
quoting
what schrodinger's experiment was but
it's called schrodinger's cat
and he says you have a box and you put a
cat in it
and in the box is the way he explained
it you have a uh
an atom radioactive that's radioactive
and you have a detector that can detect
whether
it emits a particle it emits radiation
and if it emits the particle then
a a vial of poisonous gas
is is broken in this box and it kills
the cat
now when the box is sealed
and i have not observed it
i don't know whether or not the atom
decayed
and the cat was killed now
in classical physics i would just say i
don't know
whether it happened or not but when you
get into the depths of quantum theory
both of them actually happened
just like the particle here spreads out
to here and here and here and here maybe
until i observe it then it goes to one
place
quantum mechanically the atom decays
and doesn't decay that's the way its
phenomenon is spreading out it decays
and it doesn't decay
until i open up the box and observe it
and see whether the cat's alive or not
before that the atom is both decayed
and not decayed at the same time
and therefore schroedinger's cat is
alive
and dead at the same time
okay um
sound crazy but it is a macroscopic
a large ex a large effect
a large phenomenon due to a quantum
mechanical effect
and there was a cartoon i saw that shows
a man in a veterinarian's office and the
technician is coming out and saying um
dr schroedinger
about your cat i have some good news and
some bad news
uh that's a physicist joke excuse me
um so do we in daily life
encounter any quantum mechanical effects
that
we can see that are really part of our
lives
yeah look at this watch
okay now i i sent away for a
catalog from a company called breitling
and breitling sells very expensive
mechanical watches and they're
beautiful beautiful um
and um they are i think in this catalog
i got the cheapest one was like nine
thousand dollars
and they went up the hundred thousand
dollars and they can go beyond and
things like this
and they're they're mechanical and they
are absolutely works of
genius in the way in which their
movements work okay
um and they're very very accurate
for mechanical watches um
this is a casio that cost me i think
this is an expensive casio i think i
paid 60 bucks
because each night it receives the radio
signals from the atomic clock
in colorado and resets itself
and i want the time to be always very
accurate for two reasons one is
i'm a physicist and the second is i'm a
nerd but this
watch is more accurate than any one of
those breitlings
that caught thousands of dollars and
this thing was 60 bucks and you can get
watches like this for 20 or 30 bucks
that are more accurate than the
breitling and i'm
naive enough to feel that to me the
purpose of a watch is to know what the
time is i mean you know
some people have other purposes how does
this watch work
it has in it a chip which has
microscopic
transistors on it
um
transistors were invented in the
i want to say early 60s it may have been
the late
50s at bell laboratories
and you cannot understand how a
transistor works
without using quantum theory
now for those of us who are older there
were radios that had
tubes in them and you could understand
pretty well how a tube worked without
having to think about quantum theory
but you can't understand how a
transistor works without quantum theory
because it involves things like
particles moving where they shouldn't be
able to go
um like tunneling like going through a
barrier that it shouldn't be able
to go through all these sort of things
were used to
invent this transistor called transistor
was
originally called a transfer resistor
and was shortened to transistor
so here's a nice good example of a
practical device that i wear
constantly and my life is really
very dependent upon this you know if i
uh
the time that my watch broke i you know
i had trouble keeping appointments
things like that
and it's due to quantum theory so even
though quantum theory is something that
we can't understand
and we can't it doesn't
bother me the fact is
that light is a wave and it's also a
particle
the fact is that i can't know where a
particle is
and how fast it's going at the same time
that's just the way it is
the fact is i can't predict where it's
going to go
absolutely that's just the way it is
these are the ways that god made the
world
god made the world so that when i a
human being with consciousness
observe something it makes something
happen
that cannot be explained by the laws of
physics
and therefore there's something in me
which is different than the physical
world
we call it the shama it's part of the
spiritual
world and that is something
which i hope that we will talk with a
little bit more in the in the next
lecture
in conclusion i do want to say
that i have found that over the years
the more i learn about physics
and i will also say biology also say
biology
the more consistency i see with what the
torah tells us about the world
hours of discussion can take place on
this but especially in quantum theory
i see a display of a torah viewpoint
of us living in a world that we
understand partially
using it properly we make wonderful
things
such as this wristwatch used
improperly it can be very destructive
we don't understand quantum theory
that's okay
god has given us an instruction manual
called the torah to tell us that even
though we don't understand it
we know how to use it for our benefits