Showing posts with label atomic number. Show all posts
Showing posts with label atomic number. Show all posts

Wednesday, 9 October 2024

Magic Numbers

Many stable atoms have ‘magic numbers’ of protons and neutrons − 75 years ago, two physicists discovered their special properties

Published: October 7, 2024 7.55pm BST

This is the article that alerted me to the existence of these so-called "magic numbers".

The word magic is not often used in the context of science. But in the early 1930s, scientists discovered that some atomic nuclei – the center part of atoms, which make up all matter – were more stable than others. These nuclei had specific numbers of protons or neutrons, or magic numbers, as physicist Eugene Wigner called them.

The race to figure out what made these nuclei so stable began. Understanding these magic numbers would allow scientists to predict the properties of other nuclei, such as their mass or how long they are expected to live. With that, scientists could also predict which combinations of protons and neutrons can result in a nucleus.

The solution to the puzzle came in 1949 from two directions simultaneously. In the U.S., physicist Maria Goeppert Mayer published an explanation, at the same time as a group of scientists led by J. Hans D. Jensen in Germany found the same solution.

For their discovery, the two physicists each got a quarter of the 1963 Nobel Prize in physics. We’re two nuclear scientists whose work is built on Goeppert Mayer’s and Jensen’s discoveries 75 years ago. These magic numbers continue to play an important role in our research, only now we can study them in nuclei that live for just a fraction of a second.

Stability in the atom

The atom is a complex system of particles. It’s made up of a central nucleus consisting of protons and neutrons, called nucleons, with electrons orbiting around the nucleus.

Nobel prize-winning physicist Niels Bohr described these electrons in the atom as existing in a shell structure. The electrons circulate around the nucleus in particular energy levels, or orbits. These orbits have specific energies, and each orbit can hold only so many electrons.

Chemical reactions result from interactions between the electrons in two atoms. In Bohr’s model, if an electron orbit is not already filled, then it’s easier for the atoms to exchange or share those electrons and induce chemical reactions.

The Bohr model of the atom.

One class of elements, the noble gases, hardly ever react with other elements. In noble gases, the electrons occupy completely filled orbits, and as a result the atoms greedily hold onto their electrons instead of sharing and undergoing a chemical reaction.

In the 1930s, scientists wondered whether protons and neutrons might also occupy orbits, like electrons. But nobody could show this conclusively. For more than a decade, the scientific community was unable to describe the nucleus in terms of individual protons and neutrons. Scientists used a more simplified picture, one that treated protons and neutrons as one single system, like a drop of water.

In 1949, Goeppert Mayer and Jensen developed the so-called shell model of the nucleus. Protons and neutrons occupy particular orbits, analogous to electrons, but they also have a property called spin – similar to a spinning top. Goeppert Mayer and Jensen found that when combining the two properties in their calculations, they were able to reproduce the experimental observations.

Through some experiments, they found that nuclei with certain magic numbers of neutrons or protons are unusually stable and hold onto their nucleons more than researchers previously expected, just like how noble gases hold onto their electrons.

The magic numbers known to scientists are 2, 8, 20, 28, 50, 82 and 126. They are the same for both protons and neutrons. When a nucleus has a magic number of protons or neutrons, then the particular orbit is filled, and the nucleus is not very reactive, similar to the noble gases.

For example, the element tin has a magic number of protons. Tin always has 50 protons, and its most common isotope has 70 neutrons. Isotopes are atoms of the same element that have a different number of neutrons.

There are nine other stable isotopes of tin that can exist – it’s the element with the largest number of stable isotopes. A stable isotope will never spontaneously change into a different element, which is what happens to radioactive isotopes.

Helium, with two protons and two neutrons, is the lightest “doubly magic” nucleus. Both its neutron count and its proton count are a magic number. The forces that hold the helium-4 nucleus together are so strong that it’s impossible to attach another proton or neutron. If you tried to add another proton or neutron, the resulting atom would fall apart instantaneously.

On the other hand, the heaviest stable nucleus in existence, lead-208, is also a doubly magic nucleus. It has magic numbers of 82 protons and 126 neutrons.

Many stable isotopes have magic numbers of protons and neutrons.

Examples of magic numbers and stable nuclei exist everywhere – but scientists couldn’t explain them without the introduction of the shell model.

Stable nuclei in nature

The shell structure in nuclei tells researchers about how elements are distributed across the Earth and throughout the universe.

One of the most abundant elements on our planet and in the human body is oxygen, in particular the isotope oxygen-16.

With eight protons and eight neutrons, oxygen-16 has an extremely stable nucleus. A nearby star produced the oxygen we find on Earth through nuclear reactions in its core sometime before the solar system was formed.

Since oxygen nuclei are doubly magic, these nuclei in the star did not interact very much with other nuclei. So more oxygen was left around to eventually act as an essential ingredient for life on Earth.

In her Nobel lecture, Maria Goeppert Mayer talked about the work she did with physicist Edward Teller. The two had attempted to describe how these elements formed in stars. In the 1930s, it was impossible for them to explain why certain elements and isotopes were more abundant in stars than others. She later found that the increased abundances corresponded to nuclei with something in common: They all had magic numbers of neutrons.

With the shell model and the explanation of magic numbers, the production of elements in stars was possible and was published in 1957.

Scientists today continue to use ideas from the nuclear shell model to explain new phenomena in nuclear science. A few accelerator facilities, such as the Facility for Rare Isotope Beams, where we work, aim to create more exotic nuclei to understand how their properties change compared with their stable counterparts.

At the Facility for Rare Isotope Beams, scientists produce new isotopes by accelerating stable isotopes to about half the speed of light and smashing them at a target. Out of the pieces, we select the rarest ones and study their properties.

Possibly the most profound modern discovery is the fact that the magic numbers change in exotic nuclei like the type we create here. So, 75 years after the original discovery, the race to discover the next magic number is still on.

If the sequence of numbers  2, 8, 20, 28, 50, 82,126 is entered into the OEIS, we find A018226 :


A018226
     Magic numbers of nucleons: nuclei with one of these numbers of either protons or neutrons are more stable against nuclear decay.

The OEIS comments state:

"The results of the experiment indicate that 54Ca's first excited state lies at a relatively high energy, which is characteristic of a large nuclear shell gap, thus indicating that N = 34 in 54Ca is a new magic number, as predicted theoretically by the University of Tokyo group in 2001. By conducting a more detailed comparison to nuclear theory the researchers were able to show that the N = 34 magic number is equally as significant as some other nuclear shell gaps." Link

So it seems that maybe 34 should be included as well. It's interesting that the discovery was made in my birth year, 1949, now 75 years ago. So the sequence currently may better be represented as:$$2, 8, 20, 28, 34, 50, 82,126$$

Saturday, 11 March 2023

Elements, Letters and Numbers

There are 14 elements represented by a single letter on the periodic table: Hydrogen (H), Boron (B), Carbon (C), Nitrogen (N), Oxygen (O), Fluorine (F), Potassium (K), Yttirium (Y), Iodine (I), Tungsten (W), Uranium (U), Sulfur (S), Phosphorus (P), and Vanadium (V). There atomic numbers representing the number of protons in their nuclei are as follows:
  • Hydrogen (H) - 1
  • Boron (B) - 5
  • Carbon (C) - 6
  • Nitrogen (N) - 7
  • Oxygen (O) - 8
  • Fluorine (F) - 9
  • Potassium (K) - 19
  • Yttrium (Y) - 39
  • Iodine (I) - 53
  • Tungsten (W) - 74
  • Uranium (U) - 92
  • Sulfur (S) - 16
  • Phosphorus (P) - 15
  • Vanadium (V) - 23
An interesting question is how many English words can be formed from this mixture of vowels and consonants. Let's repeat the letters below and sort them into two categories:

I, O, U, B, C, F, H, K, N, P, S, V, W, Y

Here are some words that ChatGPT found that can be formed using these letters. It's not an exhaustive list.
hub, cub, sin, pin, win, his, if, vow, soy, spy, wok, sky, sun, pun, fun, kin, ink, no, on, up, us, so, is, by, icy, coy, buy, boy, fob, hob, sob, bow, cow, how, low, now, own, won, you, ivy, ups, cup, pus, sup, pin, nip, hip, sip, cop, sop, vow, sow, soy, cosy, coif, sync, piny, fowl, foul, busy, busybody, snow, snowy, cow, cowpox, cup, cupful, cusp, sushi

Each of these words can be assigned a numeric value on the basis of the atomic numbers associated with their letters. For example, hub = 1 +  92 + 5 = 98 and sushi = 19 + 92 + 19 + 1 + 53 = 184. What I've created is a gematria of sorts.

Of course, one does not need to limit oneself just to elements with a single letter. An article has been written titled List of Words Made From Periodic Table Element Symbols. It was posted on June 17, 2014 by Anne Helmenstine  and updated on January 9, 2023. Figure 1 shows a screenshot displaying the words PHYSiCs, BaNaNa, FUN and GeNiUS.


Figure 1: 

Using the atomic numbers again. It can be seen that PHYSiCs = 124, BaNaNa = 88 and GeNiUS = 168. The words in the article are listed alphabetically and in camel case. Figure 2 shows a screenshot of the C words.

Figure 2

The article only considers the words that can be made from the chemical elements and does not assign the words any numerical values, based on atomic numbers or anything else. That was my idea which is why I'm posting to this mathematics blog and not my Pedogogical Posturing blog. 

I can't think of any practical use for this gematria at the moment but that's of no consequence. Perhaps something will occur to me later. Like in standard Greek or Hebrew gematria, the atomic number assignments to elements will create links between words that add to the same sum. Figure 3 shows a table of elements and atomic numbers, sorted by element.


Figure 3: source

Figure 4 shows a periodic style table that shows the elements sorted by atomic number.


Figure 4: source

Of course there are many words that cannot be formed by combining the letters together e.g. light. We can start with Li (Lithium) but after that no further progress can be made. An interesting SageMath project would be to create a dictionary of elements and their atomic numbers and use this to automatically output the number of any word that was input.

ChatGPT created a list of triplets containing chemical name, chemical symbol and atomic number. Here it is:

[("Hydrogen", "H", 1), ("Helium", "He", 2), ("Lithium", "Li", 3), ("Beryllium", "Be", 4), ("Boron", "B", 5), ("Carbon", "C", 6), ("Nitrogen", "N", 7), ("Oxygen", "O", 8), ("Fluorine", "F", 9), ("Neon", "Ne", 10), ("Sodium", "Na", 11), ("Magnesium", "Mg", 12), ("Aluminum", "Al", 13), ("Silicon", "Si", 14), ("Phosphorus", "P", 15), ("Sulfur", "S", 16), ("Chlorine", "Cl", 17), ("Argon", "Ar", 18), ("Potassium", "K", 19), ("Calcium", "Ca", 20), ("Scandium", "Sc", 21), ("Titanium", "Ti", 22), ("Vanadium", "V", 23), ("Chromium", "Cr", 24), ("Manganese", "Mn", 25), ("Iron", "Fe", 26), ("Cobalt", "Co", 27), ("Nickel", "Ni", 28), ("Copper", "Cu", 29), ("Zinc", "Zn", 30), ("Gallium", "Ga", 31), ("Germanium", "Ge", 32), ("Arsenic", "As", 33), ("Selenium", "Se", 34), ("Bromine", "Br", 35), ("Krypton", "Kr", 36), ("Rubidium", "Rb", 37), ("Strontium", "Sr", 38), ("Yttrium", "Y", 39), ("Zirconium", "Zr", 40), ("Niobium", "Nb", 41), ("Molybdenum", "Mo", 42), ("Technetium", "Tc", 43), ("Ruthenium", "Ru", 44), ("Rhodium", "Rh", 45), ("Palladium", "Pd", 46), ("Silver", "Ag", 47), ("Cadmium", "Cd", 48), ("Indium", "In", 49), ("Tin", "Sn", 50), ("Antimony", "Sb", 51), ("Tellurium", "Te", 52), ("Iodine", "I", 53), ("Xenon", "Xe", 54), ("Cesium", "Cs", 55), ("Barium", "Ba", 56), ("Lanthanum", "La", 57), ("Cerium", "Ce", 58), ("Praseodymium", "Pr", 59), ("Neodymium", "Nd", 60), ("Promethium", "Pm", 61), ("Samarium", "Sm", 62), ("Europium", "Eu", 63), ("Gadolinium", "Gd", 64), ("Terbium", "Tb", 65), ("Dysprosium", "Dy", 66), ("Holmium", "Ho", 67), ("Erbium", "Er", 68), ("Thulium", "Tm", 69), ("Ytterbium", "Yb", 70), ("Lutetium", "Lu", 71), ("Hafnium", "Hf", 72), ("Tantalum", "Ta", 73), ("Tungsten", "W", 74), ("Rhenium", "Re", 75), ("Osmium", "Os", 76), ("Iridium", "Ir", 77), ("Platinum", "Pt", 78), ("Gold", "Au", 79), ("Mercury", "Hg", 80), ("Thallium", "Tl", 81), ("Lead", "Pb", 82), ("Bismuth", "Bi", 83), ("Polonium", "Po", 84), ("Astatine", "At", 85), ("Radon", "Rn", 86), ("Francium", "Fr", 87), ("Radium", "Ra", 88), ("Actinium", "Ac", 89), ("Thorium", "Th", 90), ("Protactinium", "Pa", 91), ("Uranium", "U", 92), ("Neptunium", "Np", 93), ("Plutonium", "Pu", 94), ("Americium", "Am", 95), ("Curium", "Cm", 96), ("Berkelium", "Bk", 97), ("Californium", "Cf", 98), ("Einsteinium", "Es", 99), ("Fermium", "Fm", 100), ("Mendelevium", "Md", 101), ("Nobelium", "No", 102), ("Lawrencium", "Lr", 103), ("Rutherfordium", "Rf", 104), ("Dubnium", "Db", 105), ("Seaborgium", "Sg", 106), ("Bohrium", "Bh", 107), ("Hassium", "Hs", 108), ("Meitnerium", "Mt", 109), ("Darmstadtium", "Ds", 110), ("Roentgenium", "Rg", 111), ("Copernicium", "Cn", 112), ("Nihonium", "Nh", 113), ("Flerovium", "Fl", 114), ("Moscovium", "Mc", 115), ("Livermorium", "Lv", 116), ("Tennessine", "Ts", 117), ("Oganesson", "Og", 118)]

This is suitable for pasting into SageMath and doing further analysis. Here is a permalink to an algorithm that will input chemical symbols that make a word (in camelcase) and output the word in uppercase together with its atomic number value. I've used "B", "O", "Th" and "Er" as input and gotten "BOTHER has an atomic number of 171" as output.