DYSPROSIUM GROUND STATES

By Prof. L. Kaliambos (Natural Philosopher in New Energy)

March 2, 2016

Dysprosium is an atom of the chemical element dysprosium with symbol Dy and atomic number 66. However unlike for hydrogen, a closed-form solution to the Schrödinger equation for the many-electron atoms like the dysprosium atom has not been found. So, under the invalid relativity (EXPERIMENTS REJECT RELATIVITY) various approximations, such as the Hartree–Fock method, could be used to estimate the ground state energies. Under these difficulties I analyzed carefully the electromagnetic interactions of two spinning electrons of opposite spin which give a simple formula for the solution of such ground state energies. You can see it in my paper “ Spin-spin interactions of electrons and also of nucleons create atomic molecular and nuclear structures” (2008).Hence the electronic structure of the dysprosium ground states is given by this correct image with the following electron configuration:

1s².2s².2p_x².2p_y².2p_z².3s².3p_x².3p_y².3p_z².3d¹⁰.4s².4p⁶.4d¹⁰.5s².5p_x².5p_y².5p_z².4f¹⁰ .6s²

According to the “Ionization energies of the elements-WIKIPEDIA” the ionization energies (eV) of dysprosium (from (E₁ to E₄ ) are the following:  

E₁ = 5.9 , E₂ = 11.67,  E₃ = 22.8,  and  E₄ = 41.47  .

Note that in the absence of more ionizations we cannot calculate the ground state energies of inner orbitals. Nevertheless for understanding better such ground sate energies you can see also my papers about the ground state energies of elements in my FUNDAMENTAL PHYSICS CONCEPTS. Moreover in “User: Kaliambos" you can see my paper of 2008.  

 GROUND STATE ENERGY  OF -(E₁ +E₂) = - 17.57 eV = E(6s²)

Here the E(6s²) represents the ground srate energy of 6s².

The  electron charges (-64e) of the 64 electrons of the following electron configuration

(1s²2s²2p⁶3s²3p⁶3d¹⁰4s² 4p⁶4d¹⁰5s²5p⁶4f¹⁰)

screen the nuclear charge (+66e) and for a perfect screening we would have ζ = 2. However the electrons of 6s penetrate the electron cloud of 4f  and lead to the deformation of electron clouds. Thus ζ > 2 .

Note that the 6s² consists of one pair (2 electrons of opposite spin). Thus applying my formula of 2008 we write

-E(6s²) =  17.57 = [(27.21)ζ² - (16.95)ζ + 4.1 ] / n²

Then using  n = 6  the above equation can be written as

(27.21)ζ² - (16.95)ζ  - 628.42  =  0

and  solving for ζ we get ζ = 5.13 >  2 .

Of course the two electrons of opposite spin (6s²) do not provide any mutual repulsion, because I discovered in 2008 that at very short inter-electron separations the magnetic attraction is stronger than the electric repulsion giving a vibration energy, which seems to be like a simple electric repulsion of the Coulomb law. This situation of avibration energy due to an electromagnetic interaction indeed occurs, because the peripheral velocity of a spinning electron is faster than the speed of light, which invalidates Einstein’s theory of special relativity. (See my FASTER THAN LIGHT).

However under the influence of invalid relativity and in the absence of a detailed knowledge about the mutual electromagnetic interaction between the electrons of opposite spin today many physicists believe incorrectly that two electrons with opposite spin exert a mutual Coulomb repulsion. Under such fallacious ideas I published my paper of 2008  .

 EXPLANATION OF E₃ = 22.8  eV = -E(4f²) + E(4f¹)

According to the experiments the electrons of 4f¹⁰ belong to the same energy level of 6s²  with n = 6 . It consist of three pairs (six electrons of 4f² , 4f² , and  4f² with opposite spin)  and of four electrons with parallel spin. Here the E(4f²) represents the ground state energy of the first 4f², while the E(4f¹) represents the ground state energy of 4f¹.

The charges (-54e) of the 54 electrons of the following electron configuration

(1s²2s²2p⁶3s²3p⁶3d¹⁰4s² 4p⁶4d¹⁰5s²5p⁶)

screen the nuclear charge (+66e) and for a perfect screening we would have ζ = 12. However in the absence of 6s²the electrons of 4f penetrate strongly the 5p⁶  and provide  an effective ζ , whose the value is less than the perfect screening with ζ = 12.  Thus ζ < 12 .

Note that the first 4f² consists of one pair (2 electrons of opposite spin). Thus applying my formula of 2008 we write

-E(4f²) = -[(-27.21)ζ² + (16.95)ζ - 4.1 ] / n²

On the other hand, since the 4f¹ consists of one electron, we apply the Bohr formula as

E(4f¹)  =  (-13.6057)ζ²/n²

Therefore   E₃ = 22.8  eV = -E(4f²) + E(4f¹)  = [(13.6057)ζ² - (16.95)ζ + 4.1)] / n²

Then using  n = 6  the above equation can be written as

(13.6057)ζ² - (16.95)ζ  - 816.7  =  0

Then solving for ζ we get ζ = 8.4 < 12 .

EXPLANATION OF E₄ = 41.47  eV = -E(4f²) + E(4f¹)

Here the E(4f²) represents the ground state energy of the second 4f², while the E(4f¹) represents the ground state  energy of 4f¹.

As in the case of E₃ the charges (-54e) of the 54 electrons of the following electron configuration

(1s²2s²2p⁶3s²3p⁶3d¹⁰4s²4p⁶4d¹⁰5s²5p⁶)

screen the nuclear charge (+66e) and for a perfect screening we would have ζ = 12. However in the absence of 6s²and after the third ionization the new electron cloud of 4f penetrates also strongly the 5p⁶ . Thus, it provides an effective ζ, whose the value is less than the perfect screening with ζ = 12.

 Note that the second 4f² consists of one pair (2 electrons of opposite spin). Thus applying my formula of 2008 we write

-E(4f²) = -[(-27.21)ζ² + (16.95)ζ - 4.1 ] / n²

On the other hand, since the 4f¹ consists of one electron, we apply the Bohr formula as

E(4f¹)  =  (-13.6057)ζ²/n²

Therefore   E₄ = 41.47 eV = -E(4f²) + E(4f¹)  = [(13.6057)ζ² - (16.95)ζ + 4.1)] / n²

Then using  n = 6  the above equation can be written as

(13.6057)ζ² - (16.95)ζ  - 1488.82  =  0

Then solving for ζ we get ζ = 11.1 < 12  .

WHY EINSTEIN’S WRONG RELATIVITY LED TO THE ABANDONMENT OF NATURAL LAWS IN FAVOR OF WRONG ATOMIC THEORIES

It is of interest to note that in the absence of a detailed knowledge about the electromagnetic interaction of two electrons of opposite spin physicists so far under the influence of Einstein’s relativity could not calculate such ground state energies of many-electron atoms.  Historically, despite the enormous success of the Bohr model and the quantum mechanics of the Schrodinger equation based on the well-established laws of electromagnetism in explaining the principal features of the hydrogen spectrum and of other one-electron atomic systems, so far, under the influence of Einstein’s relativity which led to the abandonment of natural laws neither was able to provide a satisfactory explanation of the two-electron atoms.

In atomic physics a two-electron atom is a quantum mechanical system consisting of one nucleus with a charge Ze and just two electrons. This is the first case of many-electron systems. The first few two-electron atoms are:

Z =1 : H^- hydrogen anion. Z = 2 : He helium atom. Z = 3 : Li⁺  lithium atom anion. Z = 4 :  Be²⁺ beryllium ion. 

Prior to the development of quantum mechanics, an atom with many electrons was portrayed like the solar system, with the electrons representing the planets circulating about the nuclear “sun”. In the solar system, the gravitational interaction between planets is quite small compared with that between any planet and the very massive sun; interplanetary interactions can, therefore, be treated as small perturbations.

However, In the helium atom with two electrons, the interaction energy between the two spinning electrons and between an electron and the nucleus are almost of the same magnitude, and a perturbation approach is inapplicable.   

In 1925 the two young Dutch physicists Uhlenbeck and Goudsmit discovered the electron spin according to which the peripheral velocity of a spinning electron is greater than the speed of light. Since this discovery invalidates Einstein’s relativity it met much opposition by physicists including Pauli. Under the influence of Einstein’s invalid relativity  physicists believed that in nature cannot exist velocities faster than the speed of light.

So, great physicists like Pauli, Heisenberg, and Dirac abandoned the natural laws of electromagnetism in favor of wrong theories including qualitative approaches under an idea of symmetry properties between the two electrons of opposite spin which lead to many complications. Thus, in the “Helium atom-Wikipedia” one reads: “Unlike for hydrogen a closed form solution to the Schrodinger equation for the helium atom has not been found. However various approximations such as the Hartree-Fock method ,can be used to estimate the ground state energy and wave function of atoms”.

It is of interest to note that in 1993 in Olympia of Greece I presented at the international conference “Frontiers of fundamental physics” my paper of dipole photons .The conference was organised by the natural philosophers M. Barone and F. Selleri who awarded me an award including a disc of the atomic philosopher Democritus because I showed that  LAWS AND EXPERIMENTS INVALIDATE FIELDS AND RELATIVITY. In the same period  I tried to find not only the nuclear force and structure but also the coupling of two electrons under the application of the abandoned electromagnetic laws. For example in the photoelectric effect the absorption of light contributeς not only to the increase of the electron energy but also to the increase of the electron mass, because the particles of light have mass m = hν/c^2. ( See my paper "DISCOVERY OF PHOTON MASS" ).

However the electron spin which gives a peripheral velocity greater than the speed of light cannot be affected by the photon absorption. Thus after 10 years I published my paper "Nuclear structure is governed by the fundamental laws of electromagnetism" 2003), in which  I showed not only my DISCOVERY OF NUCLEAR FORCE AND STRUCTURE but  also that the peripheral velocity (u >> c) of two spinning electrons with opposite spin gives an attractive magnetic force (F_m) stronger than the electric repulsion (F_e) when the two electrons of mass m and charge (-e) are at a very short separation (r < 578.8 /10¹⁵  m). Because of the antiparallel spin along the radial direction the interaction of the electron charges gives an electromagnetic force

F_em = F_e  - F_m .

Therefore in my research the integration for calculating the mutual F_em led to the following relation:

F_em = F_e  - F_m  = Ke²/r²  - (Ke²/r⁴)(9h²/16π²m²c²)   

Of course for F_e = F_m one gets the equilibrium separation r_o = 3h/4πmc = 578.8/10¹⁵ m. That is, for an interelectron separation r < 578.8/10¹⁵ m the two electrons of opposite spin exert an attractive electromagnetic force, because the attractive F_m is stronger than the repulsive F_e . Here F_m is a spin-dependent force of short range.  As a consequence this situation provides the physical basis for understanding the pairing of two electrons described qualitatively by the Pauli principle, which cannot be applied in the simplest case of the deuteron in nuclear physics, because the binding energy between the two spinning nucleons occurs when the spin is not opposite (S=0) but parallel (S=1). According to the experiments in the case of two electrons with antiparallel spin the presence of a very strong external magnetic field gives parallel spin (S=1)  with electric and magnetic repulsions given by

F_em =  F_e + F_m

So,  according to the well-established laws of electromagnetism after a detailed analysis of  paired electrons in  two-electron atoms I concluded that at r <  578.8/10¹⁵ m  a motional EMF produces vibrations of  paired electrons.

Unfortunately today many physicists in the absence of a detailed knowledge believe that the two electrons of two-electron atoms under the Coulomb repulsion between the electrons move not together as one particle but as separated particles possessing the two opposite points of the diameter of  the orbit around the nucleus.  In fact, the two electrons of opposite spin behave like one particle circulating about the nucleus under the rules of quantum mechanics forming two-electron orbitals in helium, beryllium etc. In my paper of 2008,  I showed that the positive vibration energy (Ev) described in eV depends on the Ze charge of nucleus as

Ev = 16.95Z - 4.1  

Of course in the absence of such a vibration energy Ev it is well-known that the ground state  energy E described in eV for two orbiting electrons could be given by the Bohr model as

E = (-27.21) Z².

So the combination of the energies of the Bohr model and the vibration energies due to the opposite spin of two electrons led to my discovery of the ground state energy of two-electron atoms given by

-E  =  (-27.21) Z² + (16.95 )Z - 4.1

For example the laboratory measurement of the ionization energy of H^- yields an energy of the ground state  -E = - 14.35  eV. In this case since Z = 1 we get 

-E =  -27.21 + 16.95  - 4.1 = -14.35 eV.  In the same way writing for the helium Z = 2 we get

-E = - 108.8 + 32.9 - 4.1 = -79.0  eV

The discovery of this simple formula based on the well-established laws of electromagnetism was the first fundamental equation for understanding the energies of many-electron atoms, while various theories based on qualitative symmetry properties lead to complications.