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The molecular ions also differ from the O+ ions in that they seem more specifically associated with enhanced geomagnetic activity.
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Postsource decay (PSD) spectra of the molecular ions were also recorded.
No detection of other molecular ion peaks also exhibited that the product did not contain other impurities other than GA and GB.
While the MOTion trap was proposed as a means to provide ultracold molecular ions, it has also produced many important results in quantum chemistry since it brings ultracold atoms and ions together in a controllable way.
The MEP-i also detected molecular ions which were most likely O2 +, possibly including N2 + and NO+.
There were also no molecular ions of CB77-thiol and methylthio-CB77 in any mass spectra of plant samples.
Finally, it is also possible to load molecular ions into the trap by first trapping an atomic ion of interest, usually produced by ionization of a neutral atomic gas, and then leaking in neutral molecular gas to react with the atomic ions and produce the desired molecular ions.
The [M + Na]+ molecular ions of the protonated (C27H33N9O15P2) FAD form (K,L) also encounter the destabilization of the sodium ion present in the adduct.
Also, semiquantitative analyses of various molecular ions were done by liquid chromatography and selected ion monitoring [LC-ESI/selected ion monitoring (SIM /MS] using a Quattro Ultima (Micromass, Manchester, United Kingdom) mass spectrometer.
The [M + Na]+ molecular ions of the deprotonated (C27H31N9O15P2) FAD (F H) form also showed the same orientation between both aromatic systems with an additional stabilization of the sodium ion present in the adduct.
These parent ions also represented the most abundant PE molecular species in positive mode.
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