1 00:00:00,810 --> 00:00:05,280 PROFESSOR: Today, we continue with our discussion of WKB. 2 00:00:05,280 --> 00:00:09,090 So a few matters regarding the WKB 3 00:00:09,090 --> 00:00:13,470 were explained in the last few segments. 4 00:00:13,470 --> 00:00:20,970 We discussed there would be useful to define 5 00:00:20,970 --> 00:00:24,600 a position-dependent momentum for a particle that's 6 00:00:24,600 --> 00:00:26,760 moving in a potential. 7 00:00:26,760 --> 00:00:30,330 That was a completely classical notion, 8 00:00:30,330 --> 00:00:35,550 but helped our terminology in solving the Schrodinger 9 00:00:35,550 --> 00:00:40,380 equation and set up the stage for some definitions. 10 00:00:40,380 --> 00:00:43,585 For example, a position-dependent de Broglie 11 00:00:43,585 --> 00:00:51,210 wavelength that would be given in terms 12 00:00:51,210 --> 00:00:55,410 of the position-dependent momentum by the classic formula 13 00:00:55,410 --> 00:00:58,770 that de Broglie used for particles that move 14 00:00:58,770 --> 00:00:59,865 with constant momentum. 15 00:01:02,550 --> 00:01:12,150 Then in this language, the time independent Schrodinger 16 00:01:12,150 --> 00:01:17,770 equation took the form p squared on psi 17 00:01:17,770 --> 00:01:22,290 is equal to p squared of x times psi. 18 00:01:22,290 --> 00:01:25,810 This is psi of x. 19 00:01:25,810 --> 00:01:29,410 And we mentioned that it was kind of nice that the momentum 20 00:01:29,410 --> 00:01:37,900 operator ended up sort of in the style of an eigenvalue. 21 00:01:37,900 --> 00:01:41,740 The eigenvalue p of x. 22 00:01:41,740 --> 00:01:44,370 We then spoke about wave functions 23 00:01:44,370 --> 00:01:47,030 that in the WKB approximation would 24 00:01:47,030 --> 00:01:53,130 take a form of an exponential with a phase and a magnitude-- 25 00:01:53,130 --> 00:01:57,510 so the usual notation we have for complex numbers. 26 00:01:57,510 --> 00:02:04,360 So the psi of x and p would be written as rho of x and t 27 00:02:04,360 --> 00:02:09,050 e to the i over h bar s of x and t. 28 00:02:12,280 --> 00:02:16,390 That's a typical form of a WKB wave function 29 00:02:16,390 --> 00:02:18,460 that you will see soon. 30 00:02:18,460 --> 00:02:22,930 And for such wave functions, it's 31 00:02:22,930 --> 00:02:26,920 kind of manifest that rho here is the charge density. 32 00:02:26,920 --> 00:02:31,480 Because if you take the norm squared of psi, 33 00:02:31,480 --> 00:02:32,950 that gives you exactly rho. 34 00:02:32,950 --> 00:02:35,080 The phase cancels. 35 00:02:35,080 --> 00:02:39,160 On the other hand, the computation of the current 36 00:02:39,160 --> 00:02:40,930 was a little more interesting. 37 00:02:40,930 --> 00:02:47,660 And it gave you rho times gradient of s over m-- 38 00:02:47,660 --> 00:02:49,215 the mass of the particle. 39 00:02:54,330 --> 00:02:59,180 So we identified the current as perpendicular 40 00:02:59,180 --> 00:03:06,050 to the surfaces of constant s or constant phase in the exponent 41 00:03:06,050 --> 00:03:09,020 of the WKB equation. 42 00:03:09,020 --> 00:03:13,370 Our last comment had to do with lambda. 43 00:03:13,370 --> 00:03:19,790 And we've said that we suspect that the semiclassical 44 00:03:19,790 --> 00:03:23,600 approximation is valid in some way 45 00:03:23,600 --> 00:03:31,010 when lambda is small compared to a physical length of a system 46 00:03:31,010 --> 00:03:35,780 or when lambda changes slowly as a function of position. 47 00:03:35,780 --> 00:03:38,540 And those things we have not quite yet 48 00:03:38,540 --> 00:03:41,150 determined precisely how they go. 49 00:03:41,150 --> 00:03:43,190 And some of what you have to do today 50 00:03:43,190 --> 00:03:47,570 is understand more concretely the nature 51 00:03:47,570 --> 00:03:49,530 of the approximation. 52 00:03:49,530 --> 00:03:51,650 So the semiclassical approximation 53 00:03:51,650 --> 00:04:03,720 has something to do with lambda slowly varying and with lambda 54 00:04:03,720 --> 00:04:07,870 small, in some sense. 55 00:04:11,080 --> 00:04:13,330 And since you have an h bar in here 56 00:04:13,330 --> 00:04:17,120 that would make it small if h bar is small, 57 00:04:17,120 --> 00:04:20,470 we also mentioned we would end up 58 00:04:20,470 --> 00:04:26,140 considering the limit as a sort of imaginary or fictitious 59 00:04:26,140 --> 00:04:29,140 limit in which h bar goes to 0. 60 00:04:36,260 --> 00:04:40,710 So it's time to try to really do the approximation. 61 00:04:40,710 --> 00:04:47,930 Let let's try to write something and approximate the solution. 62 00:04:47,930 --> 00:04:52,550 Now, we had a nice instructive form of the wave function 63 00:04:52,550 --> 00:04:57,440 there, but I will take a simpler form 64 00:04:57,440 --> 00:05:04,490 in which the wave function will be just a pure exponential. 65 00:05:04,490 --> 00:05:07,800 So setting the approximation scheme-- 66 00:05:07,800 --> 00:05:13,885 so approximation-- scheme. 67 00:05:18,390 --> 00:05:21,410 So before I had the wave function 68 00:05:21,410 --> 00:05:26,390 that had a norm and a phase. 69 00:05:26,390 --> 00:05:28,820 Now, I want the wave function that 70 00:05:28,820 --> 00:05:32,540 looks like it just has a phase. 71 00:05:32,540 --> 00:05:34,670 You would say, of course, that's impossible. 72 00:05:34,670 --> 00:05:38,630 So we will for all the time independent Schrodinger 73 00:05:38,630 --> 00:05:39,510 equation. 74 00:05:39,510 --> 00:05:42,440 So we will use an s of x. 75 00:05:42,440 --> 00:05:46,730 And we will write the psi of x in the form 76 00:05:46,730 --> 00:05:50,500 e to the i h bar s of x. 77 00:05:53,700 --> 00:05:55,890 And you say, no, that's not true. 78 00:05:55,890 --> 00:06:00,230 My usual wave functions are more than just phases. 79 00:06:00,230 --> 00:06:02,550 They're not just faces. 80 00:06:02,550 --> 00:06:05,180 We've seen wave functions have different magnitudes. 81 00:06:05,180 --> 00:06:09,660 Here that wave function will have always density equal to 1. 82 00:06:09,660 --> 00:06:11,370 But that is voided-- 83 00:06:11,370 --> 00:06:16,800 that criticism is voided-- 84 00:06:16,800 --> 00:06:23,500 if you just simply say that s now may be a complex number. 85 00:06:23,500 --> 00:06:28,620 So if s is itself a complex number, the imaginary part of s 86 00:06:28,620 --> 00:06:31,140 provides the norm of the wave function. 87 00:06:31,140 --> 00:06:34,140 So it's possible to do that. 88 00:06:34,140 --> 00:06:40,680 Any rho up here can be written as the exponential 89 00:06:40,680 --> 00:06:44,330 of the log of something and then can be brought in the exponent. 90 00:06:44,330 --> 00:06:47,850 And there's no loss of generality in writing something 91 00:06:47,850 --> 00:06:50,760 like that if s is complex. 92 00:06:53,430 --> 00:06:58,290 Now, we have the Schrodinger equation. 93 00:06:58,290 --> 00:07:00,530 And the Schrodinger equation was written there. 94 00:07:00,530 --> 00:07:08,000 So it's minus h squared d second d x squared of psi of x. 95 00:07:14,058 --> 00:07:21,020 It's equal to p squared of x e to the i over h bar s. 96 00:07:25,170 --> 00:07:28,560 Now, when we differentiate an exponential, 97 00:07:28,560 --> 00:07:31,540 we differentiate it two times. 98 00:07:31,540 --> 00:07:35,230 We will have a couple of things. 99 00:07:35,230 --> 00:07:41,200 We can differentiate the first time-- brings an s prime down. 100 00:07:41,200 --> 00:07:43,565 And the second time you can differentiate the exponent 101 00:07:43,565 --> 00:07:46,710 or you can differentiate what is down already. 102 00:07:46,710 --> 00:07:49,990 So it's two terms. 103 00:07:49,990 --> 00:07:52,170 The first one would be-- 104 00:07:52,170 --> 00:07:54,985 imagine differentiating the first one. 105 00:07:54,985 --> 00:07:58,800 The s goes down and then the derivative acts on the s. 106 00:07:58,800 --> 00:08:04,210 So you get i over h bar s double prime. 107 00:08:04,210 --> 00:08:05,330 Let's use prime notation. 108 00:08:08,190 --> 00:08:10,710 And the other one is when you differentiate the ones here. 109 00:08:10,710 --> 00:08:13,710 It brings the factor down, again, there. 110 00:08:13,710 --> 00:08:20,110 So it's plus i over h bar s prime squared. 111 00:08:23,820 --> 00:08:26,920 And then the phase is still there, 112 00:08:26,920 --> 00:08:30,580 and it can cancel between the left and the right. 113 00:08:30,580 --> 00:08:33,360 So this is equal to p squared of x. 114 00:08:40,799 --> 00:08:45,460 So I took the derivative and cancelled the exponentials. 115 00:08:45,460 --> 00:08:51,010 So cleaning this up a little bit, 116 00:08:51,010 --> 00:08:54,610 we'll have this term over here. 117 00:08:54,610 --> 00:08:58,690 The h's cancel, the sine cancels, 118 00:08:58,690 --> 00:09:09,120 and you get s prime of x squared minus i h bar s double prime. 119 00:09:09,120 --> 00:09:11,615 It's equal to p squared of x. 120 00:09:18,850 --> 00:09:20,930 OK. 121 00:09:20,930 --> 00:09:22,535 Simple enough. 122 00:09:22,535 --> 00:09:25,050 We have a derivation of that equation. 123 00:09:25,050 --> 00:09:29,270 And the first thing that you say is, 124 00:09:29,270 --> 00:09:32,290 it looks like we've gone backwards. 125 00:09:32,290 --> 00:09:36,170 We've gone from a reasonably simple equation, 126 00:09:36,170 --> 00:09:38,930 the Schrodinger equation-- second order, 127 00:09:38,930 --> 00:09:43,250 linear differential equation-- 128 00:09:43,250 --> 00:09:45,635 to a nonlinear equation. 129 00:09:48,500 --> 00:09:53,510 Here is the function squared, the derivative squared, second 130 00:09:53,510 --> 00:09:54,790 derivative, no-- 131 00:09:54,790 --> 00:09:58,790 there's nothing linear about this equation in s. 132 00:09:58,790 --> 00:10:02,600 If you have one solution for an s and another solution, 133 00:10:02,600 --> 00:10:05,750 you cannot add them. 134 00:10:05,750 --> 00:10:10,470 So this happens because we put everything in the exponential. 135 00:10:10,470 --> 00:10:14,540 When you take double derivatives of an exponential 136 00:10:14,540 --> 00:10:17,090 you get a term with double derivatives 137 00:10:17,090 --> 00:10:18,950 and a term with a derivative squared. 138 00:10:18,950 --> 00:10:22,910 There's nothing you can do. 139 00:10:22,910 --> 00:10:28,280 And this still represents progress in some way, 140 00:10:28,280 --> 00:10:31,040 even though it has become an equation that 141 00:10:31,040 --> 00:10:36,280 looks more difficult. It can be tracked in some other way. 142 00:10:36,280 --> 00:10:41,350 So the first and most important thing 143 00:10:41,350 --> 00:10:43,000 we want to say about this equation 144 00:10:43,000 --> 00:10:49,470 is that it's a nonlinear differential equation. 145 00:10:52,270 --> 00:10:57,860 The h bar term appears in just one position here. 146 00:10:57,860 --> 00:11:02,320 And let's consider a following claim-- 147 00:11:02,320 --> 00:11:09,680 I will claim that i h bar s double prime-- 148 00:11:09,680 --> 00:11:20,355 this term-- is small when v of x is slowly varying. 149 00:11:24,720 --> 00:11:28,230 You see, we're having in mind the situation 150 00:11:28,230 --> 00:11:31,290 with which a particle is moving in a potential-- a quantum 151 00:11:31,290 --> 00:11:32,190 particle. 152 00:11:32,190 --> 00:11:36,930 So there it s, b of x is well-defined. 153 00:11:36,930 --> 00:11:39,670 That's a term that goes into this equation. 154 00:11:39,670 --> 00:11:43,110 So this is partly known. 155 00:11:43,110 --> 00:11:47,320 You may not know the energy, but the potential you know. 156 00:11:47,320 --> 00:11:54,060 And my claim-- and perhaps a very important claim about this 157 00:11:54,060 --> 00:11:57,120 equation that sets you going clearly-- 158 00:11:57,120 --> 00:12:01,800 is that when v of s is slowly varying, 159 00:12:01,800 --> 00:12:06,670 this term is almost irrelevant. 160 00:12:06,670 --> 00:12:10,940 That's the first thing we want to make sure we understand. 161 00:12:10,940 --> 00:12:26,400 So let's take v of x is equal to v0 at constant. 162 00:12:26,400 --> 00:12:30,190 So this is the extreme case of a slowly varying potential. 163 00:12:30,190 --> 00:12:33,050 It just doesn't vary at all. 164 00:12:33,050 --> 00:12:41,250 In that case, p of x is going to be a constant. 165 00:12:41,250 --> 00:12:46,865 And that constant is the square root of 2m e minus V0. 166 00:12:57,020 --> 00:12:59,630 And what do we have here? 167 00:12:59,630 --> 00:13:01,190 We have a free particle. 168 00:13:01,190 --> 00:13:03,380 This v of x is a constant. 169 00:13:03,380 --> 00:13:06,560 So the solution of the Schrodinger equation, 170 00:13:06,560 --> 00:13:11,120 that you know in general, is that psi 171 00:13:11,120 --> 00:13:18,080 of x is e to the i p0 x over h bar. 172 00:13:18,080 --> 00:13:20,280 That solves the Schrodinger equation. 173 00:13:20,280 --> 00:13:23,100 Now, we're talking about this equation. 174 00:13:23,100 --> 00:13:27,140 So to connect to that equation in this situation 175 00:13:27,140 --> 00:13:30,440 of constant potential constant, momentum 176 00:13:30,440 --> 00:13:32,870 in the classical sense, and a free particle 177 00:13:32,870 --> 00:13:38,510 with that constant momentum, remember that s is a term here 178 00:13:38,510 --> 00:13:40,830 in the exponential. 179 00:13:40,830 --> 00:13:55,030 So for this solution here, s of x is equal to p0 x. 180 00:13:55,030 --> 00:13:57,010 That's all it is. 181 00:13:57,010 --> 00:14:02,780 It's whatever is left when you single out the i over h bar. 182 00:14:02,780 --> 00:14:05,960 And let's look at that thing. 183 00:14:05,960 --> 00:14:07,870 That should be a solution. 184 00:14:07,870 --> 00:14:10,630 We've constructed the solution of the momentum. 185 00:14:10,630 --> 00:14:13,540 equation for constant potential. 186 00:14:13,540 --> 00:14:16,180 We've read what s of x is. 187 00:14:16,180 --> 00:14:18,730 That should solve this equation. 188 00:14:18,730 --> 00:14:21,860 And how does it manage to solve it? 189 00:14:21,860 --> 00:14:34,030 It manages to solve it because s prime of x is equal to p0. 190 00:14:34,030 --> 00:14:39,010 s double prime of x is equal to 0. 191 00:14:39,010 --> 00:14:44,310 And the equation works out with the first term squared-- 192 00:14:44,310 --> 00:14:48,110 p0 squared-- equal to p of x squared-- 193 00:14:48,110 --> 00:14:49,820 which is p0 squared. 194 00:14:49,820 --> 00:14:52,810 So this term, first term in the left-hand side, 195 00:14:52,810 --> 00:14:57,220 is equal to the right-hand side This term is identically 0. 196 00:14:57,220 --> 00:15:00,370 So when the potential is constant, 197 00:15:00,370 --> 00:15:06,750 that term, i h bar s double prime, plays no role, It's 0. 198 00:15:09,510 --> 00:15:21,360 So the term i h bar s double prime is equal to 0. 199 00:15:21,360 --> 00:15:30,450 So the claim now follows from a fairly intuitive result. 200 00:15:30,450 --> 00:15:35,820 If the potential is constant, that term in the solution is 0. 201 00:15:35,820 --> 00:15:38,280 If the potential will be extremely, 202 00:15:38,280 --> 00:15:42,670 slowly varying, that term should be very small. 203 00:15:42,670 --> 00:15:45,750 You cannot expect that the constant potential has 204 00:15:45,750 --> 00:15:46,380 a solution. 205 00:15:46,380 --> 00:15:50,970 And you now do infinitesimal variation of your potential, 206 00:15:50,970 --> 00:15:53,860 and suddenly this term becomes very big. 207 00:15:53,860 --> 00:16:07,855 So for constant v, i h bar is double prime equal 0. 208 00:16:07,855 --> 00:16:20,080 So for slowly varying v of x i h bar is double prime, 209 00:16:20,080 --> 00:16:24,920 it should be small in the sense that this solution 210 00:16:24,920 --> 00:16:28,610 is approximately correct. 211 00:16:28,610 --> 00:16:35,790 So if we do say that, we've identified the term 212 00:16:35,790 --> 00:16:41,460 in the equation that is small when potentials are slowly 213 00:16:41,460 --> 00:16:42,360 varying. 214 00:16:42,360 --> 00:16:44,880 Therefore, we will take that term 215 00:16:44,880 --> 00:16:48,300 as being the small term in that equation. 216 00:16:48,300 --> 00:16:52,650 And this will be nicely implemented by considering, 217 00:16:52,650 --> 00:17:01,100 as we said, h bar going to 0, or h as a small parameter. 218 00:17:06,780 --> 00:17:12,930 We will learn, as we do the approximation, 219 00:17:12,930 --> 00:17:17,579 how to quantify what something that we call slowly varying is. 220 00:17:17,579 --> 00:17:21,869 But we will take h now as a small parameter-- 221 00:17:21,869 --> 00:17:24,450 that makes that term small-- 222 00:17:24,450 --> 00:17:28,980 and setup an expansion to solve this equation. 223 00:17:28,980 --> 00:17:31,380 That is our goal now. 224 00:17:31,380 --> 00:17:33,330 So how do we set it up? 225 00:17:33,330 --> 00:17:36,630 We set it up like this-- we say s of x, 226 00:17:36,630 --> 00:17:38,505 as you've learned in perturbation theory, 227 00:17:38,505 --> 00:17:47,280 is s0 of x plus h bar s1 of x-- the first correction-- 228 00:17:50,620 --> 00:18:01,850 plus h bar squared is s2 of x and higher order. 229 00:18:01,850 --> 00:18:07,430 Now, s already has units of h bar-- 230 00:18:14,200 --> 00:18:19,240 so s0 will have units of h bar too. 231 00:18:19,240 --> 00:18:24,040 s1, for example, has no units. 232 00:18:24,040 --> 00:18:30,400 So each term has a different set of units. 233 00:18:30,400 --> 00:18:34,450 And that's OK, because h bar has units. 234 00:18:34,450 --> 00:18:45,120 And this will go like 1 over h bar units 235 00:18:45,120 --> 00:18:48,390 and so forth and so on. 236 00:18:48,390 --> 00:18:50,150 So we have an expansion. 237 00:18:50,150 --> 00:18:54,980 And this we'll call our semiclassical expansion. 238 00:18:54,980 --> 00:19:01,430 As we apply now this expansion to that equation, 239 00:19:01,430 --> 00:19:07,760 we should treat h as we treated lambda in perturbation theory. 240 00:19:07,760 --> 00:19:11,930 That is, we imagine that this must be hauled order 241 00:19:11,930 --> 00:19:15,110 by order in h bar, because we imagine 242 00:19:15,110 --> 00:19:21,330 we have the flexibility of changing h bar. 243 00:19:21,330 --> 00:19:22,380 So let's do this. 244 00:19:25,150 --> 00:19:27,220 What do we have in the equation? 245 00:19:27,220 --> 00:19:28,690 We have s prime. 246 00:19:28,690 --> 00:19:40,770 So the equation has s0 prime plus h bar s1 prime. 247 00:19:40,770 --> 00:19:43,860 Now, I will keep terms up to order h bar. 248 00:19:43,860 --> 00:19:53,700 So I will stop here-- plus order h bar squared minus i h 249 00:19:53,700 --> 00:19:56,930 bar s double prime. 250 00:19:56,930 --> 00:20:02,950 So that should be s0 double prime plus order 251 00:20:02,950 --> 00:20:08,800 h bar equal b squared of x. 252 00:20:15,540 --> 00:20:17,365 So let's organize our terms. 253 00:20:21,170 --> 00:20:30,220 We have s0 prime primed squared on the left-hand side. 254 00:20:30,220 --> 00:20:32,760 Minus p squared of x-- 255 00:20:32,760 --> 00:20:36,940 I bring the p to the left-hand side-- 256 00:20:36,940 --> 00:20:39,640 plus h bar. 257 00:20:39,640 --> 00:20:45,100 So these are terms that have no h bar. 258 00:20:45,100 --> 00:20:50,530 And when we look at the h bar from the first term there, 259 00:20:50,530 --> 00:20:53,140 we square this thing. 260 00:20:53,140 --> 00:20:56,920 So you get the cross product between the s0 prime 261 00:20:56,920 --> 00:20:58,310 and the s1 prime. 262 00:20:58,310 --> 00:21:03,990 So you get 2-- 263 00:21:03,990 --> 00:21:08,250 the h prime already is there-- 264 00:21:08,250 --> 00:21:11,175 s0 prime s1 prime. 265 00:21:14,240 --> 00:21:19,190 And from the second term, you get 266 00:21:19,190 --> 00:21:32,275 minus i s0 double prime plus order h squared equals 0. 267 00:21:39,960 --> 00:21:43,020 So I just collected all the terms there. 268 00:21:46,920 --> 00:21:50,160 So if we're believing in this expansion, 269 00:21:50,160 --> 00:21:53,720 the first thing we should say is that each coefficient 270 00:21:53,720 --> 00:21:57,500 in the power series of h bar is 0. 271 00:21:57,500 --> 00:21:59,210 So we'll get two equations. 272 00:22:03,120 --> 00:22:10,854 First one is s0 prime squared is equal to p squared of x. 273 00:22:10,854 --> 00:22:13,260 That's one. 274 00:22:13,260 --> 00:22:16,850 That's this term equal to 0. 275 00:22:16,850 --> 00:22:21,500 And here, we get-- 276 00:22:21,500 --> 00:22:25,340 let's write it in a way that we solve for the unknown. 277 00:22:25,340 --> 00:22:30,110 Supposedly from this first equation we, can solve for s0. 278 00:22:30,110 --> 00:22:34,110 If you know s0, what do you want now to know is s1 prime. 279 00:22:34,110 --> 00:22:39,950 So let's write this as s1 prime is equal to i s0 280 00:22:39,950 --> 00:22:47,120 double prime over 2 s0 zero prime. 281 00:22:47,120 --> 00:22:50,200 So these are my two equations.