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Assisted Laser Desorption

FIGURE 6.14 Infrared laser desorption (IRLD) mass spectrum of an oligomeric mixture of polypropylene glycol (PPG 3000) in KCI. (Reprinted with permission from reference 51). [Pg.129]

FIGURE 6.15 Laser desorption mass spectrum of lysozyme using a slurry of glycerol and ultrafine metal powder as the matrix. (Reprinted with permission from reference 53). [Pg.129]

FIGURE 6.16 Matrix-UVLD mass spectrum of bovine aibumin. (Reprinted with permission of reference 56). [Pg.130]

While the initial work by Hillenkamp and Karas utilized the 266-nm line (fourth harmonic) from a Nd YAG laser and nicotinic acid as the UV-absorbing matrix, it quickly became apparent that longer wavelengths and other matrices were also [Pg.130]

A number of detailed models for the mechanisms for MALDI ionization have been described. The homogeneous bottleneck mechanism attempts to explain the vibrational mismatch between the matrix and analyte that leads to relatively cool (low internal energy) analyte molecules, while the cool plume or hydrodynamic modeF focuses on the actual expansion into the gas phase. Experimentally, Cotter and Spengler determined the initial kinetic energy distributions of molecular and fragment [Pg.131]


A connnon feature of all mass spectrometers is the need to generate ions. Over the years a variety of ion sources have been developed. The physical chemistry and chemical physics communities have generally worked on gaseous and/or relatively volatile samples and thus have relied extensively on the two traditional ionization methods, electron ionization (El) and photoionization (PI). Other ionization sources, developed principally for analytical work, have recently started to be used in physical chemistry research. These include fast-atom bombardment (FAB), matrix-assisted laser desorption ionization (MALDI) and electrospray ionization (ES). [Pg.1329]

FigureBl.7.2. Schematic representations of alternative ionization methods to El and PI (a) fast-atom bombardment in which a beam of keV atoms desorbs solute from a matrix (b) matrix-assisted laser desorption ionization and (c) electrospray ionization. FigureBl.7.2. Schematic representations of alternative ionization methods to El and PI (a) fast-atom bombardment in which a beam of keV atoms desorbs solute from a matrix (b) matrix-assisted laser desorption ionization and (c) electrospray ionization.
Until about the 1990s, visible light played little intrinsic part in the development of mainstream mass spectrometry for analysis, but, more recently, lasers have become very important as ionization and ablation sources, particularly for polar organic substances (matrix-assisted laser desorption ionization, MALDI) and intractable solids (isotope analysis), respectively. [Pg.119]

Some solid materials are very intractable to analysis by standard methods and cannot be easily vaporized or dissolved in common solvents. Glass, bone, dried paint, and archaeological samples are common examples. These materials would now be examined by laser ablation, a technique that produces an aerosol of particulate matter. The laser can be used in its defocused mode for surface profiling or in its focused mode for depth profiling. Interestingly, lasers can be used to vaporize even thermally labile materials through use of the matrix-assisted laser desorption ionization (MALDI) method variant. [Pg.280]

El = electron ionization Cl = chemical ionization ES = electrospray APCI = atmospheric-pressure chemical ionization MALDI = matrix-assisted laser desorption ionization PT = plasma torch (isotope ratios) TI = thermal (surface) ionization (isotope ratios). [Pg.280]

Ionization can be improved in many cases by placing the sample in a matrix formed from sinapic acid, nicotinic acid, or other materials. This variant of laser desorption is known as matrix-assisted laser desorption ionization (MALDI). The vaporized acids transfer protons to sample molecules (M) to produce protonated ions [M + H]+. [Pg.384]

The ablated vapors constitute an aerosol that can be examined using a secondary ionization source. Thus, passing the aerosol into a plasma torch provides an excellent means of ionization, and by such methods isotope patterns or ratios are readily measurable from otherwise intractable materials such as bone or ceramics. If the sample examined is dissolved as a solid solution in a matrix, the rapid expansion of the matrix, often an organic acid, covolatilizes the entrained sample. Proton transfer from the matrix occurs to give protonated molecular ions of the sample. Normally thermally unstable, polar biomolecules such as proteins give good yields of protonated ions. This is the basis of matrix-assisted laser desorption ionization (MALDI). [Pg.399]

The three techniques — laser desorption ionization, laser ablation with secondary ionization, and matrix-assisted laser desorption — are all used for mass spectrometry of a wide variety of substances from rock, ceramics, and bone to proteins, peptides, and oligonucleotides. [Pg.399]

Laser-desorption mass spectrometry (LDMS) or matrix-assisted laser desorption ionization (MALDI) coupled to a time-of-flight analyzer produces protonated or deprotonated molecular ion clusters for peptides and proteins up to masses of several thousand. [Pg.417]

MALDI. matrix-assisted laser desorption ionization... [Pg.446]

MALDI = matrix assisted laser desorption, ftms = Fourier transform mass spectrometry TOF = time of flight. [Pg.539]

DETECTION OF AROMATIC AMINES BY SURFACE-ASSISTED LASER DESORPTION-IONIZATION... [Pg.103]

An application of surface-assisted laser desorption-ionization (SALDI) method for practical, ultrahigh sensitivity detection of aromatic amines by GC-MS is reported. The prototype analytical device for trace detection of different organic compounds is created. [Pg.103]

APPLICATION OF SURFACE-ASSISTED LASER DESORPTION IONIZATION TO THE DETECTION OF BIOMOLECULES... [Pg.140]

Matrix-assisted laser desorption/ionization (MALDI) is widely used for the detection of organic molecules. One of the limitations of the method is a strong matrix background in low-mass (up to 500-700 Da) range. In present work an alternative approach based on the application of rough matrix-less surfaces and known as surface-assisted laser desoi ption/ionization (SALDI), has been applied. [Pg.140]

Electron impact (El), or Efectrospray ionization (ESI), or Matrix-assisted laser desorption ionization (MALDI)... [Pg.409]

Most biochemical analyses by MS use either electrospray ionization (ESI) or matrix-assisted laser desorption ionization (MALD1), typically linked to a time-of-flight (TOF) mass analyzer. Both ESI and MALDl are "soft" ionization methods that produce charged molecules with little fragmentation, even with biological samples of very high molecular weight. [Pg.417]

MALDI (Section 12.4) Matrix-assisted laser desorption ionization a mild method for ionizing a molecule so that fragmentation is minimized during mass spectrometry. [Pg.1245]

Matrix-assisted Laser Desorption/lonization Mass Spectrometry... [Pg.748]

Matrix-assisted laser desorption mass spectrometry (MALDI-MS) is, after electrospray ionization (ESI), the second most commonly used method for ionization of biomolecules in mass spectrometry. Samples are mixed with a UV-absorbing matrix substance and are air-dried on a metal target. Ionization and desorption of intact molecular ions are performed using a UV laser pulse. [Pg.748]

Tandem mass spectrometry (MS/MS) is a method for obtaining sequence and structural information by measurement of the mass-to-charge ratios of ionized molecules before and after dissociation reactions within a mass spectrometer which consists essentially of two mass spectrometers in tandem. In the first step, precursor ions are selected for further fragmentation by energy impact and interaction with a collision gas. The generated product ions can be analyzed by a second scan step. MS/MS measurements of peptides can be performed using electrospray or matrix-assisted laser desorption/ionization in combination with triple quadruple, ion trap, quadrupole-TOF (time-of-flight), TOF-TOF or ion cyclotron resonance MS. Tandem... [Pg.1191]

Two relatively new techniques, matrix assisted laser desorption ionization-lime of flight mass spectrometry (MALDI-TOF) and electrospray ionization (FS1), offer new possibilities for analysis of polymers with molecular weights in the tens of thousands. PS molecular weights as high as 1.5 million have been determined by MALDI-TOF. Recent reviews on the application of these techniques to synthetic polymers include those by Ilantoif54 and Nielen.555 The methods have been much used to provide evidence for initiation and termination mechanisms in various forms of living and controlled radical polymerization.550 Some examples of the application of MALDI-TOF and ESI in end group determination are provided in Table 3.12. The table is not intended to be a comprehensive survey. [Pg.143]

The molecular weights and molecular weight distributions (MWD) of phenolic oligomers have been evaluated using gel permeation chromatography (GPC),23,24 NMR spectroscopy,25 vapor pressure osmometry (VPO),26 intrinsic viscosity,27 and more recently matrix-assisted laser desorption/ionization time-of-flight mass spectrometry (MALDI-TOF MS).28... [Pg.385]

Maleamic acid, cyclization of, 293 Maleic anhydride, 59 Maleimido azine, 307 Manganese diacetate catalysts, 71 Mark-Houwink-Sakurada equation, 57 Material safety data sheets (MSDSs), 246 Matrix-assisted laser desorption/ionization time-of-flight mass spectrometry (MALDI-TOFMS), 385, 388 McGrath, J. E., 327 MDI isomers, 210 MDIs. See Methylene diphenyl diisocyanates (MDIs)... [Pg.588]

Matrix-assisted laser desorption ionization post-source-decay mass spectrometry... [Pg.3]

Mass spectroscopy is a useful technique for the characterization of dendrimers because it can be used to determine relative molar mass. Also, from the fragmentation pattern, the details of the monomer assembly in the branches can be confirmed. A variety of mass spectroscopic techniques have been used for this, including electron impact, fast atom bombardment and matrix-assisted laser desorption ionization (MALDI) mass spectroscopy. [Pg.138]

Matrix-assisted laser desorption ionization (MALDI) is not yet a technique that has been used extensively for LC-MS applications. It is included here because it often provides analytical information complementary to that obtained from LC-MS with electrospray ionization, as illustrated later in Chapter 5. [Pg.55]

Experimentation showed that the protein was not glycosylated and that the sequence at the iV-amino acid terminus corresponded to that expected. The C-terminus sequence, however, did not correspond to that predicted and these data were interpreted in terms of the presence of a heterogeneous, truncated, protein. A study of the tryptic digest fragments from this protein with matrix-assisted laser desorption ionization (MALDI) with post-source decay enabled the authors to suggest the positions at which the parent protein had been truncated. [Pg.199]


See other pages where Assisted Laser Desorption is mentioned: [Pg.1331]    [Pg.9]    [Pg.136]    [Pg.153]    [Pg.548]    [Pg.433]    [Pg.259]    [Pg.490]    [Pg.6]    [Pg.6]    [Pg.15]    [Pg.55]    [Pg.97]   


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And matrix-assisted laser desorption

Assisted Laser Desorption Ionization

Atmospheric pressure matrix-assisted laser desorption/ionization

Detectors matrix-assisted laser desorption ionization

Electrospray ionization MALDI mass Matrix-assisted laser desorption

Electrospray ionization Matrix-assisted laser desorption

Electrospray-assisted laser desorption

Electrospray-assisted laser desorption ionization

Fragmentation matrix assisted laser desorption/ionization mass

Graphite assisted laser desorption ionisation

Graphite-assisted laser desorption/ionization

Imaging mass spectrometry matrix-assisted laser desorption/ionization

Imaging surface assisted laser desorption/ionization

Infrared matrix-assisted laser desorption/ionization mass

Infrared-matrix-assisted laser-desorption ionization

Instrumentation matrix-assisted laser desorption ionization

Ionization methods matrix-assisted laser desorption

Ionization techniques matrix assisted laser desorption

Irradiation-matrix-assisted laser desorption ionization

Laser assisted

Laser desorption

Laser-Assisted Field Desorption Mass Spectrometry

Lasers, types matrix-assisted laser desorption

MALDI (matrix assisted laser desorption

MALDI assisted laser desorption

MALDI, Matrix assisted laser desorption/ionization spectrometry

MALDI-MS (matrix assisted laser desorption

MALDI-TOF (matrix assisted laser desorption ionization-time

MALDI-TOF (matrix-assisted laser desorption ionization time-of-flight

MALDI-TOF-MS (matrix-assisted laser desorption ionization time-of-flight mass

MS, matrix-assisted laser desorption

MS, matrix-assisted laser desorption ionization

Mass spectrometry matrix-assisted laser desorption

Mass spectrometry matrix-assisted laser desorption ionisation

Mass spectrometry matrix-assisted laser desorption ionization

Mass spectroscopy matrix assisted laser desorption

Mass surface-assisted laser-desorption ionization

Matrix Assisted Laser Desorption Ionisation Mass Spectroscopy

Matrix Assisted Laser Desorption Ionisation Post Source Decay

Matrix Assisted Laser Desorption Ionization-Time of Flight-Mass Spectrometry (MALDI-TOF-MS)

Matrix assisted laser desorption and ionization MALDI)

Matrix assisted laser desorption ionization MALDI) mass spectrometry

Matrix assisted laser desorption ionization Proteomics

Matrix assisted laser desorption ionization sample preparation

Matrix assisted laser desorption measurements

Matrix assisted laser desorption technique

Matrix assisted laser desorption/ionisation - time of flight

Matrix assisted laser desorption/ionization linear

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Matrix assisted laser desorption/ionization spectrometry

Matrix assisted laser desorption/ionizationmass spectrometry

Matrix-Assisted Laser Desorption Ionisation Mass Spectrometry (MALDI MS)

Matrix-assisted laser desorption - time-of-flight mass spectroscopy

Matrix-assisted laser desorption 726 INDEX

Matrix-assisted laser desorption and ionization

Matrix-assisted laser desorption design

Matrix-assisted laser desorption determination

Matrix-assisted laser desorption distribution studies

Matrix-assisted laser desorption electrospray

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Matrix-assisted laser desorption ionization in-source decay

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Matrix-assisted laser desorption ionization mass analyzers used with

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Matrix-assisted laser desorption ionization mass spectroscopy

Matrix-assisted laser desorption ionization principle

Matrix-assisted laser desorption ionization process

Matrix-assisted laser desorption ionization time-of-flight mass

Matrix-assisted laser desorption ionization time-of-flight mass spectrometry

Matrix-assisted laser desorption ionization, MALD

Matrix-assisted laser desorption ionization-time of flight

Matrix-assisted laser desorption ionizationtime of flight

Matrix-assisted laser desorption ionizaton

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Matrix-assisted laser desorption/ionization biomolecules

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Matrix-assisted laser desorption/ionization in imaging mass spectrometry

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Matrix-assisted laser desorption/ionization lateral resolution

Matrix-assisted laser desorption/ionization mass spectra

Matrix-assisted laser desorption/ionization matrices used

Matrix-assisted laser desorption/ionization measurement

Matrix-assisted laser desorption/ionization mechanisms

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Matrix-assisted laser desorption/ionization schematic

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Matrix-assisted laser-desorption ionization plate

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Method matrix-assisted laser desorption

Nanoparticle-assisted laser desorption/ionization

Poly matrix assisted laser desorption

Silver MALDI (matrix-assisted laser desorption

Surface-assisted laser desorption ionisation

Surface-assisted laser desorption ionization

Surface-assisted laser desorption/ionization SALDI)

UV matrix-assisted laser desorption/ionization

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