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Lecture 20. Continuous Spectrum, the Density of States (Ch. 7), and Equipartition (Ch. 6) Typically, it’s easier to work with the integrals rather than the sums. Thus, whenever we consider an energy range which includes many levels (e.g., when kBT >> inter-level spacing), and, especially, when we are dealing with continuous spectra, we’ll replace the sum over a discrete set of energy levels with an integral over a continuum. When doing this, we must replace the level degeneracy with a new variable, the density of states, g(), which is defined as the number of states per unit energy integral: P i di exp i Z k BT P d g exp d Z k T B i , di The units of g(): (energy)-1 1 , d1 The Density of States The density of states, g(), is the number of states per unit energy Page 279, Ch. 7 Let’s consider G() - the number of states per unit volume with energy less than (for a one- and two-dimensional cases, it will be the number of states with energy less than per unit length or area, respectively). Then the density of states is its derivative: The number of states per unit volume in the energy range – +d : Since P d 1 0 P d the partition function is dG d g d 1 exp Z The probability that one of these states is occupied: The probability that the particle has an energy between and +d : g 1 g exp d Z Z g exp d 0 The Density of States for a Single Free Particle in 1D The energy spectrum for the translational motion of a molecule in free space is continuous. We will use a trick that is common in quantum mechanics: assume that a particle is in a large box (energy quantization) with zero potential energy (total energy= kin. energy). At the end of the calculation, we’ll allow the size of the box to become infinite, so that the separation of the levels tends to zero. For any macroscopic L, the energy levels are very close to each other (E ~ 1/L2), and the “continuous” description works well. E4 E3 E2 E1 n x L k For a quantum particle confined in a 1D “box”, the stationary solutions of Schrödinger equation are the standing waves with the wavelengths: 2 L 2 , n 1,2,... n kn where L The momentum in each of these states: k pn2 h 2n 2 k En 2m 8mL2 2m k 2 pn h n n L the wave number hn k 2L h 2 2 - the energy (the non-relativistic case) In the “k” (i.e., momentum) space, the states are equidistantly positioned (in contrast to the “energy” space). The Density of States for a Single Free Particle in 1D (cont.) The total number of states with the wave numbers < k is: 1 k 2 m kL G(k) the number of G k states g 1D dG d L 2 s 1 m 2 N k k kL / L G L 2m additional degeneracy of the states (2s+1) because of spin [e.g., for electrons 2s+1=2] g() 1D The Density of States for a Particle in 2D and 3D For quantum particles confined in a 2D “box” (e.g., electrons in FET): n n ky 2D k kx kx Lx ky x Lx k kx k y 2 y Ly 2 k 2 area 1 k2 k2 A 2m N k G k A G 4 4 4 4 2 Lx Ly g() A 2 s 1 m # states within ¼ of 2D g 2 D 2 2 a circle of radius k - does not depend on 3D kz 3/ 2 3 k 3 volume 1 4 / 3 k k 3V V 2m N k G k G 2 2 2 2 8 6 6 6 Lx Ly Lz g() g kx 3D V 2s 1 2m 2 4 2 1/ 2 ky Thus, for 3D electrons (2s+1=2): 3D 3/ 2 g 3D V 2 2 2m 2 3/ 2 1/ 2 Partition Function of a Free Particle in Three Dimensions 3/ 2 3/ 2 3D 2s 1 2m 1/ 2 V 2s 1 2m Z1 V g exp d g 2 exp d 2 2 2 4 4 0 0 Z1 – a reminder that this is the partition function for a single particle The mean energy can be found without evaluating the integral: E ln Z 3/ 2 exp d 0 1/ 2 exp d The numerator can be integrated by parts: 0 3 3/ 2 exp d 1/ 2 exp d 0 2 0 E 3 k BT 2 (the integrand vanishes at both limits) - in agreement with the equipartition theorem The Partition Function of a Free Particle (cont.) V 2m Z1 4 2 2 3/ 2 exp d 0 exp d k BT 3/ 2 0 mk T Z1 V B 2 2 (assume that s=0) x exp x dx k BT 3/ 2 0 3/ 2 2 2 VQ mkBT V VQ 3/ 2 h2 2m 3/ 2 2 1 mkBT nQ 2 VQ 2 3/ 2 - the quantum volume and density For unit volume (V=1): VQ L3Q LQ Z1 h 2mkBT 1 nQ VQ the quantum length, coincides [within a factor of ()1/2 ] with the de Broglie length of a particle whose kinetic energy is kBT. VQ is the volume of a box in which the ground state energy would be approximately equal to the thermal energy, and only the lowest few quantum states would be significantly populated. When V VQ, the continuous approximation breaks down and we must take quantization of the states into account. We also need to consider quantum statistics (fermions and bosons)! Partition Functions for Distinguishable Particles There is nothing in the derivation of the partition function or the Boltzmann factor that restricts it to a microsystem. However, it is often convenient to express the partition function of a combined macrosystem in terms of the single-particle partition function. We restrict ourselves to the case of non-interacting particles (the model of ideal gas). F T ,V , N kB T ln Z Recall the analogy between and Z: S U ,V , N kB ln For a microcanonical ensemble, we know the answer for total: total 1 2 ... N How about the canonical ensemble? Z total exp E1 s E2 s For two non-interacting particles, Etotal =E1+E2 : s Z total exp E1 s exp E2 s exp E1 s exp E2 s Z1 Z 2 s s1 all the states for the composite system s2 distinguishable non-interacting distinguishable particles Z total Z1 Z 2 ...... Z N Example: two non-interacting distinguishable two-state particles, the states 0 and : The partition function for a single particle: 0 exp 1 exp Z1 exp k BT k BT k BT The states of this two-particle system are: (0,0), (,), (,0), (0,) - distinguishable 2 2 exp 1 exp Z12 Z total exp i 1 2 exp 1 k BT k BT k BT k BT 4 Partition Functions for Indistinguishable Particles (Low Density Limit) If the particles are indistinguishable, the equation should be modified. Recall the multiplicity for IG: 1 = 1 VN N ( the accessible momentum " volume" ) 3N N! h If the states (,0) and (0,) of a system of two classical particles are indistinguishable: 2 2 Z total Z1 Z 2 ...... Z N 2 exp Z12 Ztotal exp i 1 exp 1 k BT k BT k BT 3 1 (For the quantum indistinguishable particles, there would be three microstates if the particles were bosons [(0,0), (0,), (,)] and one microstate [(0,)] if the particles were fermions). For two indistinguishable particles: Z total 1 1 exp E1 s exp E2 s Z1 Z 2 2 s1 s2 2 Exceptions: the microstates where the particles are in the same state. If we consider particles in the phase space whose volume is the product of accessible volumes in the coordinate space and momentum space (e.g., an ideal gas), the states with the same position and momentum are very rare (unless the density is extremely high) For a low-density system of classical indistinguishable particles: Z total 1 N Z1 N! Z and Thermodynamic Properties of an Ideal Gas The partition function for an ideal gas: 1 N Z Z1 N! Z 1 N mkBT V 2 N! 2 3N / 2 1 V N ! VQ N Note that the derivation of Z for an ideal gas was much easier than that for : we are not constrained by the energy conservation! V ln Z N ln V ln VQ ln N 1 N ln NVQ n 1 N ln Q n 1 V nQ F T ,V , N k B T ln Z NkB T ln 1 NkB T ln 1 NVQ n F Nk BT Nk BT P ln V V V V T , N - the “pressure” equation of state (“ideal gas” law) nQ nQ 5 F nQ 3/ 2 NkB S T ln 1 Nk ln T ln T 1 Nk B B ln T n T T V , N n n 2 1 VQ 31 3 U ln Z N ln VQ N N Nk BT VQ 2 2 U F TS 3 Nk BT 2 - the Sackur-Tetrode equation - the “energy” equation of state The Equipartition Theorem (continuous spectrum) Equipartition Theorem: At temperature T, the average energy of any quadratic degree of freedom is ½kBT. We’ll consider a “one-dimensional” system with just one degree of freedom: E q cq E(q) 2 q – a continuous variable, but we “discretize” it by considering small and countable q’s: 1 1 2 Z exp cq q exp cq 2 dq q q q 1 1 Z q c q E q 2 Z exp exp cq q k BT q The partition function for this system: New variable: 1 2 exp x dx exp x dx q 2 The average energy: E q c 1 Z k T 1 1 3 / 2 1 B Z 2 2 2 x c q exp(-x2) x Again, this result is valid only if the degree of freedom is “quadratic” (the limit of high temperatures, when the spacing between the energy levels of an individual system is << kBT). Equipartition Theorem and a Quantum Oscillator Classical oscillator: Quantum oscillator: p 2 kx2 E 2m 2 E k BT k BT k BT 2 2 1 2 n n k m exp 2 the equipartition function: Z exp n exp exp n 1 exp 2 0 0 ln Z 2 1 exp exp 2 ... ln 1 exp the average energy of the oscillator: E 1 exp 1 ln Z 2 1 exp 2 exp 1 the limit of high T: 1 exp 1 k BT the limit of low T: 1 k BT E 2 1 1 1 E k BT 2 (the ground state is by far the most probable state) the assumption of a continuous energy spectrum was violated The Maxwell Speed Distribution (ideal gas) The probability that a molecule has an energy between and +d is: P d 1 1 d d g exp g exp Z1 nQ k BT k BT 3/ 2 1 2m 2 1/ 2 3 / 2 g 2 2 1/ 2 nQ 4 3D g() exp k BT 0 P 2 3 / 2 1/ 2 exp k T B P() g C = 0 0 Now let’s look at the speed distribution for these particles: 1 2 mv 2 The probability to find a particle with the speed between v and v+dv, irrespective of the direction of its velocity, is the same as that finding it between and +d where d = mvdv: Pvdv P d P mvdv 1/ 2 2 Pv m 3 / 2 v 2 exp 1 mv2 m 2 2 k BT 3/ 2 mv 2 4v exp 2 k BT 2 Maxwell distribution Note that Planck’s constant has vanished from the equation – it is a classical result. The Maxwell Speed Distribution (cont.) m Pv dv 2 k BT 3/ 2 mv2 4v 2 dv exp 2 k BT vy 4v 2 dv The structure of this equation is transparent: the Boltzmann factor is multiplied by the number of states between v and v+dv. The constant can be found from the normalization: 3/ 2 m C 2 k BT Pv dv 1 0 " volume" v v dv v vx vz P(v) d dN NP d N exp k BT energy distribution, N – the total # of particles m dN v NPv dv N 2 k T B 3/ 2 mv2 dv 4v exp 2 k T B 2 v speed distribution dN v x NP v x P(vx) 1/ 2 m dv N 2 k B T mv x2 exp dv x 2 k T B distribution for the projection of velocity, vx vx The Characteristic Values of Speed m Pv 2 k BT 3/ 2 mv 2 4v exp 2 k BT 2 P(v) Because Maxwell distribution is skewed (not symmetric in v), the root mean square speed is not equal to the most probable speed: The root-mean-square speed is proportional to the square root of the average energy: E vmax v vrms 1 2 mvrms 2 vrms 2E 3k BT m m v The most probable speed: 2 k BT dPv 0 v max dv m v vmax The average speed: m v v P v dv 2 k T B 0 3 2 mv 2 0 4 v exp 2kBT 3 vmax : v : vrms 2 : 8 / : 3 1 : 1.13 : 1.22 8k BT dv m Problem (Maxwell distr.) Consider a mixture of Hydrogen and Helium at T=300 K. Find the speed at which the Maxwell distributions for these gases have the same value. m Pv, T , m 2 k BT m1 2 k T B 3/ 2 3/ 2 mv2 4v exp 2 k BT 2 m1v 2 m2 2 4v exp 2 k T 2 k T B B 3/ 2 m2 v 2 4v exp 2 k T B 2 3 m1v 2 3 m2v 2 ln m1 ln m2 2 2k BT 2 2k BT 3 m1 v2 m1 m2 ln 2 m2 2k BT m1 3 1.38 10 23 300 ln 2 m2 1.6 km/s m1 m2 2 1.7 10 27 3k BT ln v Problem (final 2005, MB speed distribution) Consider an ideal gas of atoms with mass m at temperature T. (a) Using the Maxwell-Boltzmann distribution for the speed v, find the corresponding distribution for the kinetic energy (don’t forget to transform dv into d). (b) Find the most probable value of the kinetic energy. (c) Does this value of energy correspond to the most probable value of speed? Explain. m (a) dN v NPv dv N 2 k T B dv 2 dN NP d v d m m P 2 k BT (b) P 0 3/ 2 3/ 2 mv2 dv 4v exp 2 k BT 2 m 1 2 dv d N 2 m 2 k BT 3/ 2 1 2 8 exp d m k T 2 m B 4 2 1/ 2 exp 3/ 2 m k BT 1/ 2 1 1 1/ 2 exp 0 exp 2 k BT k BT k BT (c) the most probable value of speed 1 max 2 k BT 2 k BT dPv 0 v max dv m v vmax the kin. energy that corresponds to the most probable value of speed 1 2 max k BT doesn’t correspond k BT