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On this special day in which we both decided to unite our souls in a single one, I just wanted to tell you that I am very happy and excited. There aren’t enough words for me to describe how I am feeling right now. You are and have always been one of the most important reasons of my life.
To everyone who is with us in this moment, I want to thank you for your company; I feel really happy and fortunate for having someone so beautiful on the inside and the outside as my wife, and wanted to share with all of you this great happiness that fulfills my heart. I sincerely appreciate your attendance and unconditional support.
Honey, we are starting a new stage. And I promise you that we’ll be happy forever. Something inside me tells me that it is going to be like that, that we will be able to achieve our goals together and that the sky will fill us with blessings and eternal happiness.
I thank you, my love, for helping me to be better, for lifting and encouraging me when I am nearly falling. You are the person that has always inspired me, and that’s why I have always respected you and made the possible and impossible to make you happy.
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Radioactive decay will change one nucleus to another if the product nucleus has a greater nuclear binding energy than the initial decaying nucleus. The difference in binding energy (comparing the before and after states) determines which decays are energetically possible and which are not. The excess binding energy appears as kinetic energy or rest mass energy of the decay products.
The Chart of the Nuclides, part of which is shown above is a plot of nuclei as a function of proton number, Z, and neutron number, N. All stable nuclei and known radioactive nuclei, both naturally occurring and manmade, are shown on this chart, along with their decay properties. Nuclei with an excess of protons or neutrons in comparison with the stable nuclei will decay toward the stable nuclei by changing protons into neutrons or neutrons into protons, or else by shedding neutrons or protons either singly or in combination. Nuclei are also unstable if they are excited, that is, not in their lowest energy states. In this case the nucleus can decay by getting rid of its excess energy without changing Z or N by emitting a gamma ray.
Nuclear decay processes must satisfy several conservation laws, meaning that the value of the conserved quantity after the decay, taking into account all the decay products, must equal the same quantity evaluated for the nucleus before the decay. Conserved quantities include total energy (including mass), electric charge, linear and angular momentum, number of nucleons, and lepton number (sum of the number of electrons, neutrinos, positrons and antineutrinos–with antiparticles counting as -1).
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