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The Structure of the Nucleus Checker Board Model. by Theodore M. Lach. The Structure of the Nucleus. Assumptions: The structure of the nucleus must be simple (belief that nature is inherently simple) Only the two quarks with like charge rotate in nucleons
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The Structure of the Nucleus Checker Board Model by Theodore M. Lach
The Structure of the Nucleus Assumptions: The structure of the nucleus must be simple (belief that nature is inherently simple) Only the two quarks with like charge rotate in nucleons (assumption of this model, helps explain the magnetic moment of the neutron.) Frequency of rotation for proton and neutron are the same (assumption of this model) Spherical shape of nucleus is an apparent shape due to a flat structure viewed from all possible angles or precessing at a high rate of spin.
The Structure of the Nucleus Requirements: The structures must agree with the stability of known nuclei. The Nucleus must have a periodic structure to explain the “fuzzy” diffraction patterns. A nucleus may have more than one structure (isomer). The structure must be able to logically explain alpha, beta, and gamma decay.
The Structure of the Nucleus GIVEN, MAGNETIC MOMENTS: Proton = 1.41060761(47) X 10-26 Joules/Tesla 2.7928473(37) + 29 Bohr Magnetons (PDG 2000) Neutron = - 0.96623707(40) X 10-26 Joules/Tesla - 1.913042(7) + 5 Bohr Magnetons (PDG 2000)
The Structure of the Nucleus Given, Masses of Proton and Neutron: * = PDG 2000 Proton = 1836.15(3) mass electrons 1.672623 X 10 - 27 Kg * 938.327200(0) + 4 MeV * 1.007276466(88) + 13 AMU * Neutron = 1838.683(7) mass electrons 1.6749286 X 10 - 27 Kg * 939.5653(3) + 4 MeV * 1.008664915(78) + 55 AMU * Electron = 9.1093897(54) X 10-31 Kg
The Structure of the Nucleus Given: CONSTANTS: Electron/Proton charge = 1.602095 X 10-19 coulombs Speed of light “c” = 2.997925 meters / sec Plank’s constant “h” = 6.62618 x10-34 J s Equations used in this theory: m = I(A) = ef (p r2) = 1/2 ( e v r) Magnetic Moment mv = mo (1 - v2/c2)-1/2 Einstein lv = h / mvv DeBroglie
The Structure of the 4He NucleusBasic Principle 4 He Proton Neutron Dn Quark - 1/3 Up Quark +2/3 Neutron Proton
The Structure of the 4He NucleusBasic Principle refined 4 He spin down spin down Proton Neutron Dn Quark - 1/3 Q Up Quark +2/3 Q spin up spin up Neutron Proton
Proton spin Up Neutron spin Up Neutron spin Down Proton spin Down The Structure of the He NucleusBasic Principle refined
r2 x (charge density) 4p The Structure of the Nucleus Known Charge Distribution of the Neutron Agrees with assumed structure of this theory Positive Core Negative shell 0.6 f m 0.5 1.0 1.5 2.0 radius (f m) Charge Distribution for the neutron as determined by electron scattering Reference: Pg 687, Figure 14.19, Fujia Yang and Joseph H. Hamilton, “Modern Atomic and Nuclear Physics, McGraw-Hill, 1996. Quote from that text: “The neutron charge distribution with an inner positive charge and outer layer of negative charge is consistent with its negative magnetic moment” Additional references: R.M. Littauer, H.F. Schopper, R.R. Wilson “Structure of the Proton and , , . Neutron, Physical Review Letters, Vol7, no.4 page 144.
3 H 1 3 He 2 Proton Neutron The Structure of the Nucleus Two examples of nuclear mirror nuclei 7 Li 3 7 Be 4
The Structure of the Carbon Nucleus 12 C 6 14 C 6 Abundance = 98.89% half life = 5715 years Proton Neutron
The Structure of the Nucleus Two stable isomers of Oxygen 16. 16 O 8 Proton or Neutron The Nuclear Cluster Model, which predicts linear structures such as Oxygen 16 and Mg 24 is described in the Handbook of Nuclear Properties, D.N. Peonaru and W. Greiner pg 103 Evidence for linear Mg 24 was published by Wuosmaa et.al Phys. Rev. Lett., 68, 1295, 1992.
The Structure of the Nucleus 2 H 1 14 N 7 6 Li 3 10 B 5 Proton Only stable forms of odd proton-odd neutron nuclei. Neutron
18 O 8 0.20% 19 F 9 100% The Structure of the Nucleus Stable structures from Oxygen 16 to Fluorine 19. 16 O 8 17 O 8 99.76% 0.038% 2- Alpha Particles Neutron Proton
18 O 8 0.20% The Structure of the Nucleus n d n d u u u p p n d d n n Flux Line out of page / direction u Flux Line down into the page / direction u p p Neutrons Protons spin up Spin up spin down spin down p n d u
The Structure of the Nucleus Stable structures of Neon, 5 alpha particles spin = 0 spin = 0 spin = 3/2+ 22 Ne 10 20 Ne 10 21 Ne 10 9.25% 90.48% 0.27% Abundance Alpha Particle Neon 22 has 8 additional neutron sites that could be populated, resulting in Ne 30. To date the heaviest isotope of Ne that has been found is Ne 29 with a half life of .2 seconds. Neutron Proton
The Structure of the Nucleus 40 Ca 20 Neutron Proton Most abundant form of Ca, 96.94%. Double mirror symmetry. Double Magic number Nuclei.
The Structure of the Nucleus 4 He 2 12 C 6 40 Ca 20 24 Mg 12 These 4 nuclear structures all follow the same pattern / symmetry. They all have double mirror symmetry. Two of these structures are double magic. The other two have high abundance's..
The Structure of the Nucleus 32 S 16 40 Ca 20 48 Ti 22 These 3 nuclear structures all have double mirror symmetry and are key nuclei for their abundance and stability. Fe 56 has the highest binding energy of any nucleus.
The Structure of the Nucleus 46 Ca 20 42 Ca 20 44 Ca 20 0.647% 0.004% 2.086% 48 Ca 20 54 Ca 20 0.187% 2- Alpha Particles non-structural neutron Starting with Ca 48 and filling six additional non-structural neutron sites gives Ca 54. To date the heaviest isotope of Ca that has been found is Ca 53 with a half life of 0.09 seconds. Neutron Proton
The Structure of the Nucleus 34 Mg 12 24 O 8 44 S 16 20 msec 61 msec 123 msec 54 Ca 20 64 Cr 24 74 Ni 28 Not Found 1.1 sec >1 usec 2- Alpha Particles O 24, Mg 34, Cr 64, Ni 74, are significantly more stable then the next heavier isotope. The above structures have a number of protons that is divisible by 4. Ca 54 would fit this model, to date only Ca 53 (90 msec) has been found. non-structural neutron Neutron Proton
The Structure of the Nucleus 56 Fe 26 Neutron Proton Most abundant form of Fe, 91.75%. Double mirror symmetry
0.282 % 54 Fe 26 56 Fe 26 5.84% 91.75% The Structure of the Nucleus 58 Fe 26 60 Fe 26 2- Alpha Particles Different Forms of stable Iron nuclei Neutron Half life = 1.5 X 10 6 years Proton
68 Fe 26 69 Fe 26 The Structure of the Nucleus half life > 150 nsec half life = .10 sec 2 H Fe 68 and Fe 69 are the last two isotopes of Fe. Notice that the structure of Fe 68 (or Ti 58) is a repeating structure of 3 neutrons followed by 2 protons. The structure at the bottom of Fe 69 above would also explain the nuclei of Ne 29, Si 39, Zn 79, and Se 89. Similarly if the splitting occurred at both ends that would explain Zn 80 and Se 90. Also the Fe 68 structure would predict that Ar 48 will eventually be found. All the above nuclei have one thing in common: their number of protons are 4(n + 1/2). 2- Alpha Particles non-structural neutron Neutron Proton
The Structure of the Nucleus 58 Ni 28 Neutron Proton
72 Ge 32 74 Ge 32 27.66 % 35.94% 84 Ge 32 76 Ge 32 7.44% 0.947 sec The Structure of the Nucleus 70 Ge 32 21.23% 2- Alpha Particles Non structural Neutron Neutron Proton
The Structure of the Nucleus Neutron Proton 3- Alpha Particles Non Structural Neutron 120 Sn 50 32.59% 122 Sn 50 4.63% 118 Sn 50 24.22% Sn 120 is the most abundant form of Sn. Subtract two non structural neutrons and you get Sn 118, 24.22% abundance, Subtract two more non structural neutrons and you get Sn 116, abundance 14.54%, subtract the last two non structural neutrons= Sn 114, abundance .65%
124 Sn 50 5.79% 2- Alpha Particles Neutron Proton The Structure of the Nucleus Sn 124 is the last stable nuclei of Sn. This structure has mirror symmetry. This structure has 4 more neutron sites so that nuclei up to Sn 128 can be explained.
132 Xe 54 26.9% 3- Alpha Particles Non Structural Neutron Neutron Proton The Structure of the Nucleus Xe 132 is the most abundant stable nuclei of Xe. This structure has 27 alpha particles arranged in 9 rows of 3 alphas each. 9X3 is the only way you can factor 27. If you remove the 8 non structural neutrons from Xe 132 you get Xe 124, which is the lightest stable nuclei of Xe.
138 Xe 54 14.08 min Neutron Proton Non Structural Neutron 2- Alpha Particles The Structure of the Nucleus
Neutron Proton The Structure of the Nucleus 164 Gd 64 2- Alpha Particles half life = 45 sec Neutron in a non-structural position Gd 164 is the heaviest unstable isotope of Gd with a half life. 32 Alpha structures, plus 30 additional structural neutrons and six non-structural neutrons. If you remove the 6 non-structural neutrons from Gd 164, you get Gd 158, the most abundant and stable form of Gd. Erbium (168 and 174) also agrees with the above logic.
The Structure of the Nucleus 208 Pb 82 2- Alpha Particles 3 neutrons 2 protons symmetry Neutron Proton Single bonded Neutron Slip Lines n + 4 symmetry Note: This structure does not agree with the currently accepted size of Pb 208. This structure is about 3X as large as currently accepted. This structure better explains the large quadrupole moments for nuclei over 50>A> 90. If we drop the single bonded neutrons (2 at a time) we get Pb 206 and Pb 204, both stable nuclei.
The Structure of the Nucleus 32 Ne 3.5 ms 23 N 14.5 ms 20 C 14 ms 35 Na 1.5 ms O 26, F 29, Mg 38, Si 43, P46, also fits this pattern and all except Carbon are the heaviest known isotope. Only Al 41 and S 49 have not yet been found.
2.7 fm The Structure of the Nucleus Halo Nuclei 6 He 2 806.7ms 8 He 2 119 ms 14 Be 4 4.35 ms 11 Li 3 8.5 ms He 6, He 8, Li 11, Be 12 and Be 14 are known as the Halo Nuclei, it is know that two loosely bound neutrons are tied to the core of the nuclei. In these nuclei the mass and charge radii may differ by large amounts. The density distribution shows an extended neutron tail at low density. Li 11 extends farther out than current models can explain. B 17, also believed to be a halo nuclei, fits this pattern. Reference: D.N. Poenaru and W. Greiner pg 139. and proceedings of ENAM 98.
The Structure of the Nucleus 2.7 fm 8 He 2 119 ms 11 Li 3 8.7 ms
The Structure of the Nucleus Semi stable structures along the proton drip line half life = 53. 29 days half life = 19.255 seconds 7 Be 4 10 C 6 13 O 8 22 Si 14 half life = 6 ms half life = 8.58 ms Ne 16 and Mg 19 exists and fit this pattern, their half lives should be between 6-8 ms.
The Structure of the Nucleus Very unstable structures that decay by double proton emission 6 Be 4 12 O 8 Half life 5.0x10 -21 sec Half life 1.0x10 -21 sec 8 C 6 Half life ~ 2.0x10 -21 sec
The Structure of the Nucleus 5 H 1 9 He 2 19 B 5 half life = 2x10-21sec half life = ?? half life ~ 1x10-21sec He 10 does not have a bound state. B19 is the last isotope of Boron. Predictions: Hydrogen 6 will be found to be an unbound nuclei.
The Structure of the Nucleus 78 Ni 28 34 Mg 12 74 Ni 28 Mg 34 is known to have a half life of 20 ms. Ni 35 and Ni36 have half lives > 200 ns. Ni 76 is believed to have a half live > 150 ns. Ni 78 half life is not known.
m proton m proton m neutron / = -2 (rp/rn)2 The Structure of the Nucleus • m = I(A) = (eq f) p r2 = 1/2 (eq vq r) = I(A) = 2(2/3)f p rp2 m neutron = I(A) = 2(-1/3)f p rn2 Since this model assumes the frequency of rotation of the proton and neutron are the same, we get. rn/rp = {2(.96623707)/1.41060761}1/2 rn = 1.1704523 rp Therefore the velocity of the down quark in the neutron is 1.17045 the velocity of the up quark in the proton.
BE( 3H) = mass(3 H) - me - mp - 2mn = 8.48183 Mev BE( 3He) = mass(3 He) - 2me - 2mp - mn = 7.71809 Mev BE( 3H) - BE(3 He) = .76374 Mev Coulomb energy in 3 He = D BE = .76374 Mev = 6e2/5Rc The Structure of the Nucleus It is generally accepted that the Binding energy difference between the mirror nuclei of 3 He and 3 H is due to Coulomb repulsion between the two protons. Blatt, Weisskoff, Theoretical Nuclear Physics,52,p 204 RC = separation distance between the two protons in 3 He. RC = 2.262 fm. If we assume the structure is linear, and the neutron is between the two protons and 1.1704523 times larger, we get rp = .5211 fm and r n = .6099 fm
2 m up quark vup quark2 ( ) 1- c2 2 m down quark vdown quark2 ( ) 1- The Structure of the Nucleus mproton = 1836.1 me = mdown quark+ mneutron = 1838.6 me = mup quark + c2 Plugging vup=0.8454c and vdn=0.9895c into the above 2 equations, we get two equations with two unknowns (mass of up and down quarks). This give a mass of the up quark of 463.8 mass electrons and the down quark of 99 mass electrons. This results in the up quark having a DeBroglie wavelength of 3.30 fm, which when divided by 2pcorresponds to a radius of .526 fm, which is 1% different than the .5211 fm initially estimated.
The Structure of the Nucleus • Iterating until the DeBrolie wavelength of the up quark in the proton exactly matches the radius of the proton we get: • Proton = 0.519406 X 10 -15 meters • Neutron = 0.6079394 X 10 -15 meters • 2 - Up Quarks in Proton = . 848123 speed of light • 2 - Down Quarks in Neutron = . 992685 speed of light • Up Quark mass = 464.41 electron masses • Down Quark mass = 82.958 electron masses • Period of Revolution = 1.283533x10-23 seconds Radius: Velocity: Mass:
r2 x (charge density) 4p The Structure of the Nucleus Known Charge Distribution of the Neutron Size of the Neutron in this model Agrees with the peak of the negative Charge distribution. 0.6 f m 0.5 1.0 1.5 2.0 radius (f m) Charge Distribution for the neutron as determined by electron scattering Reference: Pg 687, Figure 14.19, Fujia Yang and Joseph H. Hamilton, “Modern Atomic and Nuclear Physics, McGraw-Hill, 1996. Quote from that text: “The neutron charge distribution with an inner positive charge and outer layer of negative charge is consistent with its negative magnetic moment” Additional references: R.M. Littauer, H.F. Schopper, R.R. Wilson “Structure of the Proton and , , . Neutron, Physical Review Letters, Vol7, no.4 page 144.
2.255fm The Structure of the Nucleus Unit cell size = 1.12735 fm “diameter” of He nucleus = 2.255 fm This model predicts a size and charge distribution of the neutron that agrees with electron scattering, pg 687 Modern Atomic and Nuclear Physics, F. Yang and J.H. Hamilton, 1996 McGraw Hill. (see text) This model predicts a size of the proton that agrees with many nuclear physics texts, namely 0.45 fm to 0.65 fm. Note that the linear extrapolation of the 3D model predicts a size of 1.23 fm for the proton, which is too big.
122 Sn 50 4.63% The Structure of the Nucleus r = r0 A1/3 = 1.23 A1/3 = 6.10 fm 1 3 5 7 9 7 5 3 1 -- 41 r = r0 A1/3 = 7.17 fm 1 3 5 7 5 3 1 -- 25 3.5 min. 192 Pb 82 Sn 120 (-2 ) Sn 118 (-4 ) 6.36 fm 7.75 fm Alphas 2- Alphas Notice that the above diamond structures give consecutive magic numbers. The Sn structure is stable because square structures of Sn are stable, on the other hand the above structure of Pb is not as stable. Since this model has derived the size of a Helium nucleus as 2.255 fm this can be used to calculate the size of the above structures, and good agreement is found with established values. non-structural neutron Neutron Proton
2.255 fm The Structure of the Nucleus r = r0 A1/3 = 4.71 fm r = r0 A1/3 = 1.23 A1/3 = 3.10 fm 56 Fe 26 16 O 8 r = r0 A1/3 = 4.21 fm 40 Ca 20 4.51 fm 4.51 fm Notice that the above structures of O 16, Ca 40, and Fe 56 give good agreement to the accepted size of these structures. This model has derived the size of a Helium nucleus as 2.255 fm and this can be used to compare against the accepted size of these nuclei. 1- Alpha Neutron Proton
The Structure of the Nucleus Mass Mev -1 This model predicts that the Up quark will be heavier than the down quark. In the other two families the +2/3 quark is heavier than the -1/3 quark. The first generation now is similar to the others. The ratio of the mass ofthe Up quark to the down quark is about the same as the ratio of the Charm to the Strange.