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Simple conduction  (Page 2/2)

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We know that when we apply an electric field to a charge that there is a force exerted on it, and that if the charge is ableto move it will do so. The motion of charge gives rise to an electric current , which we call I . The current is a measure of how much charge is passing a givenpoint per unit time ( Coulombs second ).

It will be helpful if we have some kind of model of how electricity flows in a conductor. There are several approacheswhich one can take, some more intuitive than others. The one we will look at, while not correct in the strictest sense, stillgives a very good picture of how electrical conduction works, and is perfectly fine to use in a variety of situations. In the Drude theory of conduction, the initial hypothesis consists of a solid, which contains mobile charges which arefree to move about under the influence of an applied electric field. There are also fixed charges of polarity opposite thatof the mobile charges, so that everywhere within the solid, the net charge density is zero. (This hypothesis is based on themodel of the atom, with a positively charged nucleus and negatively charged electrons surrounding it. In a solid, theatoms are fixed in position in the lattice, but it is assumed that some of the electrons can break free of their "host" atomand move about to other places within the solid.) In our model, let us choose the polarity of the mobile charges to be positive;this is not usually the case, but we can avoid a lot of "minus ones" this way, and have a better chance of ending up with the right answer in the end.

Model of a conductor.
As shown in , the model of the conductor consists of a number of mobile positive charges(represented by the balls with the "+" sign in them) and an equal number of fixed negative charges (represented by the bare"-" sign). In subsequent figures, we will leave out the fixed charge, since it can not contribute in any way to the conductionprocess, but keep in mind that it is there, and that the total net charge is zero within the material. Each of the mobilecharge carriers has a mass, m , and an amount of charge, q .
Applying a potential to a conductor
In order to have some conduction, we have to apply a potential or voltage across the sample ( ). We do this with a battery, which creates a potential difference, V , between one end of the sample and the other. We will make thesimplest assumption that we can, and say that the voltage, V , gives rise to a uniform electric field within the sample. The magnitude of the electric field isgiven simply by
E V L
where L is the length of the sample, and V is the voltage which is placed across it. (In truth, we should be showing E as well as subsequent forces etc. as vectors in our equations, but since their direction willbe obvious, and unambiguous, let's keep things simple, and just write them as scalers.) Electric potential , or voltage, is just a measure of the change in potential energy perunit charge going from one place to another. Since energy, or work is simply force times distance, if we divide the energy perunit charge by the distance over which that potential exists, we will end up with force per unit charge, or electric field, E . If you are not sure about what you just read, write it out as equations, and see that it is so.

The electric field will exert a force on the movable charges (And the fixed ones too for that matter, but since they can notgo anywhere, nothing happens to them). The force is given simply as the product of the electric field strength times thecharge

F q E
The force acts on the charges and causes them to accelerate according to Newton's equations of motion
F m t v t q E
or
t v t q E m
Thus, the velocity of a particle with no initial velocity will increase linearly with time as:
v t q E m t
The rate of acceleration is proportional to the strength of the electric field, and inversely proportional to the mass ofthe particle. The particle can not continue to accelerate forever however. Since it is located within a solid, sooner or later itwill collide with either another carrier, or perhaps one of the fixed atoms within the solid. We will assume that the collisionis completely inelastic, and that after a collision, the particle comes to a stop, only to be accelerated again by theelectric field. If we were to make a plot of the particles velocity as a function of time, it might look something like .
Velocity as a function of time for charge carrier
Although the particle achieves various velocities, depending upon how much time there is between collisions, there will besome average velocity, v , which will depend upon the details of the collision process. Let us define a scattering time τ s which will give us that average velocity when we multiply it times the acceleration of theparticle. That is:
v q E τ s m
or
τ s m v q E
Now let's take a look at just a small section of the conductor ( ). It will have the cross section of the sample, A , but will only be v Δ t long, where Δ t is just some arbitrary time interval.
Section of the conductor
After a time Δ t has passed, all of the charges within the box will have left it, as they are all moving with the same averagevelocity, v . If the density of charge carriers in the conductoris n per unit volume, then the number of carriers N within our little box is just n times the volume of the box v Δ t A
N n v Δ t A
Thus the total charge, Q , which leaves the box in time Δ t is just q N . The current flow, I , is just the amount of charge which flows out of the box per unittime
I q n v Δ t A Δ t q n v A q 2 n τ s E A m Q Δ t
We now have two choices, we can look at our result from a field quantity point of view, in which case we will be interested inthe current density , J , which is just the current, I , divided by the cross-sectional area
J I A q 2 n τ s m E σ E
where σ is called the conductivity of the material. If we look at the conductor from a macroscopic point of view, then we areinterested in the relationship between the voltage and the current. The voltage is just the electric field times thelength of the sample, and the current is just the current density times is cross sectional area. Thus we have
I A J A σ E A σ V L
or
V L σ A I R I
where R is the resistance of the sample. We have discovered Ohm's law !

Note that tells us that the resistance of the sample is proportional to its length (the longer thesample, the higher the resistance) and inversely proportional to its cross sectional area (the fatter the sample, the lower theresistance). The sample resistance is also inversely proportional to the conductivity σ of the sample. Sometimes, instead of conductivity, the resistivity , ρ , is specified for a resistive material. The resistivity is simply the inverse of the conductivity

σ 1 ρ
and thus:
R ρ L A
And, in an effort towards completeness, there is one other quantity which you might run into, and that is the carrier mobility , μ . The mobility is just the proportionality factor between the averagevelocity of the particle and the electric field. That is:
v μ E
You should check that the following two relationships are correct:
σ n q μ
μ q τ s m
If we take an ordinary conductor (and we will have to define later what we mean by that) and heat it up, the atoms within thematerial start to vibrate faster due to the elevated temperature, and the carriers suffer significantly morecollisions. The mean collision time τ s decreases, and hence the conductivity goes down, and the resistance of the sample goes up.
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Source:  OpenStax, Introduction to physical electronics. OpenStax CNX. Sep 17, 2007 Download for free at http://cnx.org/content/col10114/1.4
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