To advance Fourier transform mass spectrometry (FTMS)-based molecular structure analysis, corresponding development of the FTMS signal processing methods and instrumentation is required. Here, we demonstrate utility of a least-squares fitting (LSF) method for analysis of FTMS time-domain (transient) signals. We evaluate the LSF method in the analysis of single- and multiple-component experimental and simulated ion cyclotron resonance (ICR) and Orbitrap FTMS transient signals. Overall, the LSF method allows one to estimate the analytical limits of the conventional instrumentation and signal processing methods in FTMS. Particularly, LSF provides accurate information on initial phases of sinusoidal components in a given transient. For instance...
Unknown compounds in environmental samples are difficult to identify using standard mass spectrometr...
Magnetic resonance spectroscopy (MRS) is emerging as a unique method of performing non-invasive meta...
Fourier transform ion cyclotron resonance (FT ICR) mass spectrometry: Theory and simulation
To advance Fourier transform mass spectrometry (FTMS)-based molecular structure analysis, correspond...
Molecular and macromolecular structure analysis by high resolution and accurate mass spectrometry (M...
The filter diagonalization method (FDM) is a recently developed computational technique capable of e...
AbstractA linear relation between the voltage density or magnitude spectrum of an excitation wavefor...
Ultra-high resolution mass spectrometers produce large amount of MS and MS/MS spectra, whose interp...
Fourier transform mass spectrometry (FTMS) applications require accurate analysis of extremely compl...
The time-domain transients in the Fourier transform mass spectrometry (FTMS) analysis of monoclonal ...
RATIONALE: Peak picking algorithms in mass spectrometry face the challenge of picking the correct si...
Nowadays, among the instrumentation park of mass spectrometry, Fourier transform mass spectrometers ...
'fouriertransform' is a Python package for analyzing Fourier Transform Ion Cyclotron Resonance Mass ...
The spontaneous loss of coherence catastrophe (SLCC) is a frequently observed, yet poorly studied, s...
A nonlinear parameter estimator with frequency-windowing for signal processing, called Decimated Sig...
Unknown compounds in environmental samples are difficult to identify using standard mass spectrometr...
Magnetic resonance spectroscopy (MRS) is emerging as a unique method of performing non-invasive meta...
Fourier transform ion cyclotron resonance (FT ICR) mass spectrometry: Theory and simulation
To advance Fourier transform mass spectrometry (FTMS)-based molecular structure analysis, correspond...
Molecular and macromolecular structure analysis by high resolution and accurate mass spectrometry (M...
The filter diagonalization method (FDM) is a recently developed computational technique capable of e...
AbstractA linear relation between the voltage density or magnitude spectrum of an excitation wavefor...
Ultra-high resolution mass spectrometers produce large amount of MS and MS/MS spectra, whose interp...
Fourier transform mass spectrometry (FTMS) applications require accurate analysis of extremely compl...
The time-domain transients in the Fourier transform mass spectrometry (FTMS) analysis of monoclonal ...
RATIONALE: Peak picking algorithms in mass spectrometry face the challenge of picking the correct si...
Nowadays, among the instrumentation park of mass spectrometry, Fourier transform mass spectrometers ...
'fouriertransform' is a Python package for analyzing Fourier Transform Ion Cyclotron Resonance Mass ...
The spontaneous loss of coherence catastrophe (SLCC) is a frequently observed, yet poorly studied, s...
A nonlinear parameter estimator with frequency-windowing for signal processing, called Decimated Sig...
Unknown compounds in environmental samples are difficult to identify using standard mass spectrometr...
Magnetic resonance spectroscopy (MRS) is emerging as a unique method of performing non-invasive meta...
Fourier transform ion cyclotron resonance (FT ICR) mass spectrometry: Theory and simulation