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Into Unscientific Chapter 201
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Into Unscientific Chapter 201

  Chapter 201 A brand new particle track (5.6K)

   Mentioned earlier.

   in microphysics.

  Elementary particles can be divided into four categories:

   Quarks, leptons, gauge bosons, and the Higgs particle.

  The quark cannot exist alone because of the static closure of the quark.

   Therefore, in the microscopic field, quarks mainly exist in pairs and in threes:

   For example, a positive quark and an antiquark constitute a meson.

   Either three quarks or three antiquarks constitute a baryon.

  Baryons and mesons are collectively called hadrons. For example, the well-known protons and neutrons belong to baryons.

   Other than that.

   Hyperon is also a kind of baryon.

   Its special feature is that it contains at least one strange quark, and the interaction mode of baryons can be understood by studying hyperons.

   There are many types of hyperons discovered so far.

  Such as Σ-hyperon, Ξ-hyperon, Ω-hyperon and so on.

   Exactly.

   Presumably some students have already remembered it.

  In "Handbook for Conquering Another World", the particle beams used by the rabbits to blast away the secret realm of Tiangong in Mount Qingcheng used Ω-hyperons.

  The Λ hyperon observed by academician Zhao Zhengguo not long ago also belongs to the above category.

   See here.

  Many people may be a little confused:

  Although these contents seem to be easy to understand, what is the specific meaning of the Λ hyperson?

  Λ hyperon has many theoretical meanings.

   For example, it may assist in the discovery of the legendary fifth force.

  For example, it is helpful for the detection of dark matter and dark energy.

   And can even study neutron stars and so on.

   And in reality.

  The most direct impact is the mobile phones you and I use.

  At present, all mobile phones will use the knowledge of quantum theory, because most of the core components of mobile phones use semiconductors, and the performance of semiconductor materials must be calculated and optimized according to quantum mechanics.

  For example, there is a gap in the PN junction.

  According to the popular understanding, the potential energy is greater than the kinetic energy of the electrons. Under normal understanding, it is impossible for electrons to pass through this gap.

  But under the category of quantum mechanics, electrons are allowed to jump with a certain probability. This phenomenon is called electron tunneling.

  Electron tunneling microscope utilizes this principle. The potential energy fluctuations on the surface of the material can be seen.

   Then infer the surface structure of the material, and finally conduct semiconductor research and development.

  For example, Samsung has already sold a mobile phone Galaxy AQuantum equipped with an optical quantum chip, and it only sold for more than 500 dollars, but it was a pity that it did not explode.

  Optical quantum chips are used to generate quantum random numbers to ensure the absolute physical security of encryption algorithms, which can be regarded as a future trend.

  So microscopic particle research is actually closely related to our reality, but because the final product is a complete state, there are certain information barriers in many technologies.

   Compared with other hyperons.

  Λ hyperon is even more special.

  It is a very special kind of hyperon, and its single-particle potential well depth in nuclear matter is the deepest among all known particles.

   It's a mistake to say something human, let's put it in a more general way.

  It can be regarded as a very critical foundation in controllable nuclear fusion.

   Therefore, all countries are attaching great importance to it at present, and the relevant funds of several major countries start from 100 to 200 million a year.

  The line of sight is returning to the original place.

  Academician Zhao and Xu Yun have heard about this observation. The maximum polarization of the decay event has broken through 26%, which is the first breakthrough in the world so far.

   It can be considered a moderate news.

   But be aware.

  Before Academician Zhao and the others broke through for the first time, the maximum degree of polarization in the world reached 25%.

   Therefore, their first breakthrough was more conceptual than practical, and they were only half a body ahead.

  But the formula in Xu Yun's hand seems to point to another track:

do not forget.

  The similar binding energy numbers between the two are actually the result of Xu Yun changing y(xn+1) to y(xn+2).

   In other words.

   is on the orbital y(xn+1).

  Theoretically, there is another Λ hyperon of different magnitude.

  Think here.

  Xu Yun's curiosity grew stronger.

   Then he switched to the Aurora system again, and entered the number of 4685Λ hyperon.

   After a while.

  A bunch of samples of decay events appeared in front of him.

  Particle information is not like other research, and it does not need to consider the degree of confidentiality too much.

  Because there is a big difference between the research of front-end particles and modern technology, it is difficult for you to directly expand the discovery of a certain particle into a certain technology, and there is not much value for confidentiality.

  So after discovering new types of particles or related information, the discoverers will basically openly disclose all the information.

   Academician Zhao Zhengguo uploaded a total of 37 decay samples, divided into six files.

   It marked a lot of decay parameters, plus some other data information that few students seem to be astronomical, but are actually very important.

  Λ hyperons are observed through particle collisions, and when it comes to particle collisions, the first reaction in many people's minds is “tens of billions” and “high precision”.

   But if you want to say what the particle collider is for, many people may not be able to tell.

  In fact, the principle of this thing is very simple:

  You want to study an orange, but you have fingers the size of a building.

  You feel it, but you don't see it.

  You want to crush it, but find that it is always cunningly hidden in the crevices of your fingers.

   It's so small you can't even touch it, let alone peel it off.

  Until one day you suddenly had an inspiration and used a bunch of oranges to hit another pile of oranges.

  So ever since.

boom!

   They broke.

  You feel the pit, the juice, the peel.

   Then again.

  You know what an orange looks like, with an orange core, juice, and orange peel.

   This is actually the essence of a collider.

  In the microcosmic field, the orange juice becomes various charged or uncharged particles.

  You have to expend a certain amount of energy to separate them—that is, the force of the two big bags of oranges colliding.

   So how much energy is required to separate the constituent parts of matter on different scales?

  The force between molecules is the least, with an average of less than 0.1eV—eV is an electron volt, which refers to the energy change caused by an electronic charge passing through a voltage of one volt.

   This is a very small unit, and its effect on the human body may be equivalent to being stabbed by Fanfan.

  Chemical bonds are higher.

   Between 0.1-10eV.

  The electrons in the inner shell are about a few to tens of KeV.

  Nucleons are above MeV.

  Currently the deepest are quarks:

  The energy levels between quarks are tens of GeV.

   Calculated according to Donkey Brother's worksheet, this energy level is almost as long as Pikachu has been generating electricity since Wu Zetian ascended the throne until now

   And what is Zhao Zhengguo and the others observing?

   Also take orange juice as an example.

  After two oranges collide, the splash area and image of the orange juice are unpredictable and completely random.

  Some orange juice splashes are better, some are not, and some are even impossible to observe.

   Therefore, it is actually very difficult to observe a new particle. You have to use a magnifying glass to look for it one by one, just by looking at the face.

   But if you can know its orbit in advance is another matter.

  For example, we know that a drop of orange juice will splash on the ground seven meters away from the southeast of the collision point at an angle of 37 degrees. The ground originally had a lot of sewage sludge, and the splashed orange juice will be mixed together and cannot be observed.

   But we already know its trajectory in advance, so we can put a clean sampling board there in advance.

   Then leave the scene with both hands, find a chair and finish it, just wait quietly for it to be delivered to your door.

   Now that we have the information of the Λ hyperon and the formula model, the link of deriving the "drop point" is very simple.

   Well known.

  The general solution of N and decay is not complicated.

  For example, there is a decay chain A→B→C→D…, and the decay constants of various nuclides are λ, λ, λ, λ… respectively.

  Assuming that there is only A at the initial time t, it is obvious: N=N(0)exp(-λt).

   Then Xu Yun wrote down another equation:

  dN/dt=λN-λN.

   This is the differential equation for the change in the number of B atomic nuclei.

   Solve to get N=λN(0)[exp(-λt)-exp(-λt)]/(λ-λ).

   Then Xu Yun read while writing:

   "The differential equation for the change of the C nucleus is: dN/dt=λN-λN, that is, dN/dt+λN=λN."

"Substitute the above N, so it is N=λλN(0){exp(-λt)/[(λ-λ)(λ-λ)+exp(-λt)/[(λ-λ)(λ-λ) ]+exp(-λt)/[(λ-λ)(λ-λ)]}."

   After writing these, he paused, and briefly checked the calculations.

   After confirming that there is no problem, continue to write:

"A parameter h can be defined such that h=λλ/[(λ-λ)(λ-λ)], h=λλ/[(λ-λ)(λ-λ)], h=λλ/[(λ- λ)(λ-λ)]”

   "Then N can be simplified as: N=N(0)[hexp(-λt)+hexp(-λt)+hexp(-λt)]."

   Finish writing these.

  Xu Yun looked at the screen again, and substituted the parameters of the Λ superson into it:

  “N=N(0)[hexp(-λt)+hexp(-λt)+…hnexp(-λnt)], the molecule of h is Πλi, i=1~n-1, that is, the molecule is λλλλ.”

  “The decay period of the Λ hyperon is 17, so the denominator of h is the product of the difference between the decay constant of the previous Λ hyperon and the decay constant λ of the Λ hyperon.”

   Half an hour later.

   Aurora software actually showed a set of values.

  aa01000:

  1904.8374

  2818.7308

  3740.8182

  7496.5853

  8449.329

  Xu Yun didn't look at the numbers in front of it, and quickly pulled down the mouse.

   Soon, he locked the eighteenth line:

  18165.2989.

   With this set of numbers, the next question is very simple.

  Xu Yun entered this number into the Aurora model, and the formula is:

  F(t):=N(t)/N(0)=e^(-t/π).

  The ":=" here is a definition symbol, which means that the thing on the right is defined as the thing on the left.

  Xu Yun now assigns a physical meaning to this F(t):

  The probability that an atom is still alive (not decaying) at time t.

N=N(0)[hexp(-λt)+hexp(-λt)+…hnexp(-λnt)] This formula describes how many atoms are left at time t, what Xu Yun does is to compare the number of remaining atoms to The initial total number of atoms, this amount is naturally the probability of finding the one Xu Yun wants among the remaining atoms in the pile.

   Very simple and easy to understand.

   The Aurora system is connected to the secondary server of the Chinese Academy of Sciences, using part of the computing power of the Chinese Academy of Sciences supercomputer "Yeyu".

   So only a little over ten minutes passed.

   A result was displayed on the screen in front of him:

  t=0, F=1.

  See this scenario.

  Xu Yun's pupils suddenly shrank slightly.

  The meaning of this result is .

   At the very beginning, there is a particle on the track y(xn+1)y(xn)/h≈f.

   It's just that its life was terminated or the transition was disabled during the impact, so it was not captured in the end.

  Think here.

  Xu Yun was silent for a moment, then walked out of the library.

  Take out your phone and dial a number.

   After a while.

  The phone was connected, and a certain handsome voice came from the other side:

   "Hello, Xiao Xu?"

   "Well, it's me, teacher, are you free now?"

   "Just out of the laboratory, what's the matter?"

  Xu Yun organized some words and said:

   "Teacher, didn't I study a Σ hyperon before? Do you remember?"

  Σ hyperon is one of the more mainstream hyperons at present, with a lifetime of 0.15 nanoseconds and a mass heavier than a hyperon.

  Xu Yun's master's project is the influence of the energy level generated by the strong interaction of Σ hyperons, which involves some theoretical fields of quantum chromodynamics.

   So fast.

  Academician Pan's reply came from the other end of the phone:

   "That's right, Anthracene, I saw that you opened the record of the Aurora system. Has the research been fruitful?"

  Jiguang involves the computing power of the server, and each student's share is limited.

  Academician Pan, as Xu Yun's mentor, will naturally receive relevant notices, and Xu Yun has no intention of hiding it from him:

   "It's like this, teacher, when I was studying Σ hyperons, I suddenly discovered a rather special phase orbit, which is somewhat different from Σ hyperons in terms of eigenstates."

   "Later, I used the aurora system to simulate, and found that it was somewhat similar to the 4685Λ hyperon observed by Academician Zhao not long ago."

   "So I conducted an optimization simulation on this orbital formula, replaced the Σ hyperon with the decay parameters of the Λ hyperon, and finally found out."

   Opposite the phone.

  Academician Pan was originally tilting his head, holding his mobile phone between his shoulders and ears, and dismantling a saury takeaway with both hands.

  But when I heard Xu Yun's first sentence.

  He vaguely realized something, and stopped what he was doing.

  When Xu Yun finished his last sentence, his expression became more solemn, and he completely followed Xu Yun's train of thought:

   "Xiao Xu, what's the last F?"

   "t=0, F=1, in other words, there should be a new particle in that orbit."

   Xu Yun paused after speaking, and added:

   "A new particle that can be captured and observed."

Note:

   Let's play big, everyone can guess what technology will be derived from this new particle.

  The information that can be made public at present is as follows:

  In addition to the Λ hyperon, this technology also involves DNA storage technology, artificial intelligence Mimi, and the ratio of the last part of the reward formula. (the track formula is only the first part of three parts)

  If you guess right, add 30 more, I don't believe it, can someone guess right?

  (end of this chapter)

Chapter end

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Chapter 580
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Chapter 570
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Chapter 482
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Chapter 479
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Chapter 467
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Chapter 434
Chapter 433
Chapter 432
Chapter 431
Chapter 429
Chapter 428
Chapter 427
Chapter 426
Chapter 425
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Chapter 423
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Chapter 421
Chapter 420
Chapter 419
Chapter 418
Chapter 417
Chapter 416
Chapter 415
Chapter 414
Chapter 413
Chapter 412
Chapter 411
Chapter 410
Chapter 409
Chapter 408
Chapter 407
Chapter 406
Chapter 405
Chapter 404
Chapter 403
Chapter 402
Chapter 401
Chapter 400
Chapter 399
Chapter 395
Chapter 394
Chapter 393
Chapter 392
Chapter 391
Chapter 390
Chapter 389
Chapter 388
Chapter 387
Chapter 386
Chapter 385
Chapter 384
Chapter 383
Chapter 382
Chapter 381
Chapter 380
Chapter 379
Chapter 378
Chapter 377
Chapter 376
Chapter 375
Chapter 374
Chapter 373
Chapter 372
Chapter 371
Chapter 370
Chapter 369
Chapter 368
Chapter 367
Chapter 366
Chapter 365
Chapter 364
Chapter 363
Chapter 362
Chapter 361
Chapter 360
Chapter 359
Chapter 358
Chapter 357
Chapter 356
Chapter 355
Chapter 354
Chapter 353
Chapter 352
Chapter 351
Chapter 350
Chapter 349
Chapter 348
Chapter 347
Chapter 346
Chapter 345
Chapter 344
Chapter 343
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Chapter 338
Chapter 337
Chapter 336
Chapter 335
Chapter 334
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Chapter 331
Chapter 330
Chapter 329
Chapter 328
Chapter 327
Chapter 326
Chapter 324
Chapter 322
Chapter 321
Chapter 320
Chapter 319
Chapter 318
Chapter 317
Chapter 316
Chapter 315
Chapter 314
Chapter 313
Chapter 312
Chapter 311
Chapter 310
Chapter 309
Chapter 308
Chapter 307
Chapter 306
Chapter 305
Chapter 304
Chapter 303
Chapter 302
Chapter 301
Chapter 300
Chapter 299
Chapter 298
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Chapter 296
Chapter 295
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Chapter 293
Chapter 292
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Chapter 288
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Chapter 286
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Chapter 284
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Chapter 281
Chapter 280
Chapter 279
Chapter 278
Chapter 277
Chapter 276
Chapter 275
Chapter 274
Chapter 273
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Chapter 270
Chapter 269
Chapter 268
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Chapter 266
Chapter 265
Chapter 264
Chapter 263
Chapter 262
Chapter 261
Chapter 260
Chapter 259
Chapter 258
Chapter 257
Chapter 256
Chapter 255
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Chapter 252
Chapter 251
Chapter 250
Chapter 249
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Chapter 245
Chapter 244
Chapter 243
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Chapter 240
Chapter 239
Chapter 238
Chapter 237
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Chapter 235
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Chapter 233
Chapter 232
Chapter 231
Chapter 230
Chapter 229
Chapter 228
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Chapter 225
Chapter 224
Chapter 223
Chapter 222
Chapter 221
Chapter 220
Chapter 219
Chapter 218
Chapter 217
Chapter 216
Chapter 215
Chapter 214
Chapter 213
Chapter 212
Chapter 211
Chapter 210
Chapter 209
Chapter 208
Chapter 207
Chapter 206
Chapter 205
Chapter 204
Chapter 203
Chapter 202
Chapter 201
Chapter 200
Chapter 199
Chapter 198
Chapter 197
Chapter 196
Chapter 195
Chapter 194
Chapter 193
Chapter 192
Chapter 191
Chapter 190
Chapter 189
Chapter 188
Chapter 187
Chapter 186
Chapter 185
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Chapter 181
Chapter 180
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Chapter 175
Chapter 174
Chapter 173
Chapter 172
Chapter 171
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Chapter 168
Chapter 167
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Chapter 161
Chapter 160
Chapter 159
Chapter 158
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Chapter 154
Chapter 153
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Chapter 149
Chapter 148
Chapter 147
Chapter 146
Chapter 145
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Chapter 140
Chapter 139
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Chapter 137
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Chapter 133
Chapter 132
Chapter 131
Chapter 130
Chapter 129
Chapter 128
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Chapter 126
Chapter 125
Chapter 124
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Chapter 119
Chapter 118
Chapter 117
Chapter 116
Chapter 115
Chapter 114
Chapter 113
Chapter 112
Chapter 111
Chapter 110
Chapter 109
Chapter 108
Chapter 107
Chapter 106
Chapter 105
Chapter 104
Chapter 103
Chapter 102
Chapter 101
Chapter 100
Chapter 99
Chapter 98
Chapter 97
Chapter 96
Chapter 95
Chapter 94
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Chapter 90
Chapter 89
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Chapter 87
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Chapter 83
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Chapter 80
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Chapter 77
Chapter 76
Chapter 75
Chapter 74
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Chapter 70
Chapter 69
Chapter 68
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Chapter 60
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Chapter 57
Chapter 56
Chapter 55
Chapter 54
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Chapter 49
Chapter 48
Chapter 47
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Chapter 44
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