Примери за използване на Those electrons на Английски и техните преводи на Български
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Let's show those electrons.
Those electrons eventually end up at NADPH.
We can describe those electrons in orbitals using the four quantum numbers.
So carbon is losing some of those electrons in red.
Every one of those electrons contains a still smaller universe an infinite regression up and down.
Because oxygen is more electronegative, oxygen is going to pull those electrons in red closer to itself.
The rearrangement of those electrons in the energy levels is such a great giver of energy that you saw a flash.
But it's more electronegative than everything it's bonded to so its also going to attract those electrons, so it's going to have a partial negative charge.
The absence of those electrons was an insignificant anonymity by any measure in the scheme of things, but it was enough.
But all of a sudden we have found something that can oxidize oxygen, that can strip electrons off of oxygen and then give those electrons to the chlorophyil.
Once NADH has donated those electrons, it becomes NAD+.
If those electrons were spread out across intergalactic space, then the pulses must have crossed billions of light-years.
The way light interacts with those electrons is what makes gold glitter.
As those electrons get passed from one molecule, from one electron acceptor to another, they enter into lower and lower energy states.
Another way to show the movement of those electrons in red closer to the oxygen would be this funny arrow here.
And actually in photosystem Il-- well, I won't go into the details just yet-- but they excite a chlorophyil molecule so those electrons enter into a high energy state.
This is weird so like why did those electrons, why did those two electrons go to an orbital of higher energy?
If I give you 100 electrons, you might think that it would only take 100, or 200, or300 numbers to say everything there is to know about those electrons.
Scientists observed those electrons in the solar wind absorbing the energy of electromagnetic waves passing through the turbulent plasmas of Earth's magnetosheath.
When the sunlight passes into the solar cell,it will stimulate the electrons which are negatively charged and pushes those electrons into positively charged spaces.
I'm gonna put those electrons in the lowest energy level possible here and I'm going to not pair my spins and so I'm going to write my electron configuration like that for scandium.
So, in this case, if the electrons are not seen and nothing bounced off the light,under those circumstances you get this complicated pattern for those electrons which were not seen.
The loss of those electrons meant that the bit that used to represent a 1 would now be interpreted as a 0, and that bit happened to be located inside a memory cell that held a variable.
It's based on how many electrons an atom has, or a certain element has. And how those electrons are configured, and how the electrons of other elements are configured, or maybe other atoms of that same element.
When all those electrons decide to relax again, they can rejoin their neighbors in the lower energy levels when the atom releases energy in the form of photons or packets of light.
The Deep Space Atomic Clock uses mercury atoms;a different frequency is necessary to make those electrons change levels, and that frequency will be consistent for all mercury atoms.
The basic premise is that you have microbes that live in soils and sediments and they eat the organic matter in the soil, andto generate energy from that they have to move electrons off of that through their bio chemical pathways and stick those electrons onto something.
And of course ATPs,when they lose their phosphate groups, those electrons are in a very high energy state, they enter a lower energy state, help drive a reaction, help put energy into a reaction.
For example, if an electron beam is passed in a proximity to a bare nucleus of some chemical element, a part of those electrons will be kept around it and will automatically form the stable configuration of the electron shell of the atom[7].