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A π bond also helps to hold the two atoms together, but, because the region of maximum electron density produced by the overlap is off the line of the internuclear axis, it does not do so with the same strength as a σ bond.
The maximum electron density is about 1.2 × 1018 m-3.
The maximum electron density on the oxygen atom is responsible for the polarity of the molecule.
On the dayside of Mars the maximum electron density is approximately 2 × 105 cm−3.
From the GPS-reconstructed images the quantity assessed was the maximum electron density at the F-layer peak height (Nmax).
Our results showed an enhancement in F2-layer maximum electron density (NmF2) at daytime over low latitudes.
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On the nightside the echoes are often very diffuse and highly irregular, with maximum electron densities less than 104 cm−3.
Maximum electron densities up to 7 × 1011 cm− 3 were obtained during the transient phase.
The maximum electron densities predicted due to ablation of micrometeoroids and meteoroids of velocities 10 km/s and 30 km/s respectively are comparable in magnitude with these measurements.
Given that there will be significant amounts of unmodeled residual electron density within the solvent-accessible voids, one may consider the use of squeezing/masking techniques in order to lower the magnitude of the maximum electron-density peak and improve the R 1 and wR 2 refinement statistics for publication.
Results of the analysis also show that the maximum of the storm effect may sometimes occur below the height of the maximum of electron density (NmF2).
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maximum electron transport
maximum electron withdrawal
maximum electron tunneling
maximum electron saturation
maximum electron energy
maximum energy density
maximum electron trap
maximum electron transfer
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maximum electron emission
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maximum flux density
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