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Desorption lasers

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.
Karas M and Hlllenkamp F 1988 Laser desorption Ionization of proteins with moleoular masses exoeedlng 10,000 Daltons Anal. Chem. 60 2299-301... [Pg.1358]

Thermal electrocyclizations of perhalogenated 1,3-butadienes yield perhalogenated cyclobutenes which can be solvolysed to 3,4-dihydroxy-3-cydobutene-l,2-dione ( squaric acid") and its derivatives (G. Maahs, 1966 H. Knorr, 1978 A.H. Schmidt, 1978). Double CO extrusion from fused cyclobutenediones has been used to produce cycloalkynes, e.g., benzyne from benzocyclobutenedione by irradiation in an argon matrix (O.L. Chapman, 1973) and cyc/o-Ci8, cyclo-Cn, etc. by laser desorption mass spectroscopy of appropriate precursors (see section 4.9.8). [Pg.78]

Laser desorption methods are particularly useful for substances of high mass such as natural and synthetic polymers. Glycosides, proteins, large peptides, enzymes, paints, ceramics, bone, and large... [Pg.11]

Laser desorption is commonly used for pyrolysis/mass spectrometry, in which small samples are heated very rapidly to high temperatures to vaporize them before they are ionized. In this application of lasers, very small samples are used, and the intention is not simply to vaporize intact molecules but also to cause characteristic degradation. [Pg.12]

Lasers can be used in either pulsed or continuous mode to desorb material from a sample, which can then be examined as such or mixed or dissolved in a matrix. The desorbed (ablated) material contains few or sometimes even no ions, and a second ionization step is frequently needed to improve the yield of ions. The most common methods of providing the second ionization use MALDI to give protonated molecular ions or a plasma torch to give atomic ions for isotope ratio measurement. By adjusting the laser s focus and power, laser desorption can be used for either depth or surface profiling. [Pg.12]

Laser desorption to produce ions for mass spectrometric analysis is discussed in Chapter 2. As heating devices, lasers are convenient when much energy is needed in a very small space. A typical laser power is 10 ° W/cm. When applied to a solid, the power of a typical laser beam — a few tens of micrometers in diameter — can lead to very strong localized heating that is sufficient to vaporize the solid (ablation). Some of the factors controlling heating with lasers and laser ablation are covered in Figure 17.2. [Pg.111]

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]

A further important property of the two instruments concerns the nature of any ion sources used with them. Magnetic-sector instruments work best with a continuous ion beam produced with an electron ionization or chemical ionization source. Sources that produce pulses of ions, such as with laser desorption or radioactive (Californium) sources, are not compatible with the need for a continuous beam. However, these pulsed sources are ideal for the TOF analyzer because, in such a system, ions of all m/z values must begin their flight to the ion detector at the same instant in... [Pg.157]

On the other hand, there are some ionization techniques that are very useful, particularly at very high mass, but produce ions only in pulses. For these sources, the ion extraction field can be left on continuously. Two prominent examples are Californium radionuclide and laser desorption ionization. In the former, nuclear disintegration occurs within a very short time frame to give a... [Pg.192]

Although the above has considered only the use of a continuous main ion beam, which is then pulsed, it is not necessary for the initial beam to be continuous it too can be pulsed. For example, laser desorption uses pulses of laser light to effect ionization, and the main ion beam already... [Pg.196]

There are two common occasions when rapid measurement is preferable. The first is with ionization sources using laser desorption or radionuclides. A pulse of ions is produced in a very short interval of time, often of the order of a few nanoseconds. If the mass spectrometer takes 1 sec to attempt to scan the range of ions produced, then clearly there will be no ions left by the time the scan has completed more than a few nanoseconds (ion traps excluded). If a point ion detector were to be used for this type of pulsed ionization, then after the beginning of the scan no more ions would reach the collector because there would not be any left The array collector overcomes this difficulty by detecting the ions produced all at the same instant. [Pg.209]

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]

Mass-Analyzed Laser Desorption Ionization (MALDI)... [Pg.284]

The above direct process does not produce a high yield of ions, but it does form many molecules in the vapor phase. The yield of ions can be greatly increased by applying a second ionization method (e.g., electarn ionization) to the vaporized molecules. Therefore, laser desorption is often used in conjunction with a second ionization step, such as electron ionization, chemical ionization, or even a second laser ionization pulse. [Pg.384]

Laser desorption is particularly good for producing ions from analytically difficult materials. For example, lasers can be used with bone, ceramics, high-molecular-mass natural and synthetic polymers, and rock or metal specimens. Generally, few fragment ions are formed. [Pg.384]

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]

TOF mass spectrometry is ideally suited to those ionization methods that inherently produce ions in pulses, as with pulsed laser desorption or Cf-radionuclide ionization. [Pg.406]

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]


See other pages where Desorption lasers is mentioned: [Pg.1331]    [Pg.339]    [Pg.339]    [Pg.7]    [Pg.9]    [Pg.9]    [Pg.9]    [Pg.9]    [Pg.11]    [Pg.11]    [Pg.12]    [Pg.136]    [Pg.153]    [Pg.160]    [Pg.199]    [Pg.290]    [Pg.384]    [Pg.399]    [Pg.446]    [Pg.446]   
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Analyzed Laser Desorption Ionization (MALDI)

And matrix-assisted laser desorption

Assisted Laser Desorption

Assisted Laser Desorption Ionization

Atmospheric pressure matrix-assisted laser desorption/ionization

Delayed-extraction infrared laser desorption

Desorption (continued laser

Desorption laser induced

Desorption laser stimulated

Detectors matrix-assisted laser desorption ionization

Direct 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 laser desorption

Infrared laser desorption mass spectra

Infrared laser desorption techniques

Infrared matrix-assisted laser desorption/ionization mass

Infrared-matrix-assisted laser-desorption ionization

Instrumentation matrix-assisted laser desorption ionization

Ionization laser desorption

Ionization methods matrix-assisted laser desorption

Ionization techniques matrix assisted laser desorption

Irradiation-matrix-assisted laser desorption ionization

Laser Field Desorption

Laser desorption - Fourier transform techniques

Laser desorption ionisation

Laser desorption ionization , 192 mass spectrum

Laser desorption ionization mass

Laser desorption ionization mass molecular weight distribution

Laser desorption ionization mass spectrometry

Laser desorption ionization other considerations

Laser desorption ionization-triple

Laser desorption ionization-triple spectrometer

Laser desorption mass

Laser desorption mass spectrometr

Laser desorption mass spectrometric

Laser desorption mass spectrometry LDMS)

Laser desorption mass spectrometry, enzymatic

Laser desorption mass spectrometry, enzymatic digests

Laser desorption mass spectroscopy

Laser desorption mass spectrum

Laser desorption post-ionization methods

Laser desorption technique

Laser desorption time-of-flight

Laser desorption, analytical method

Laser desorption, comparison

Laser desorption-Fourier transform mass

Laser desorption-Fourier transform mass spectrometry

Laser desorption/chemical ionization

Laser desorption/ionization applications

Laser desorption/ionization introduction

Laser desorption/ionization mass spectrometry LDI-MS)

Laser desorption/ionization mass spectrometry MALDI

Laser desorption/ionization mass spectrometry layers

Laser desorption/ionization mass spectrometry organic material analysis using

Laser desorption/ionization mass spectrometry overview

Laser desorption/ionization mass spectrometry quantitation

Laser desorption/ionization mass spectrometry sample preparation

Laser desorption/ionization mass spectrometry techniques

Laser desorption/ionization porous silicon

Laser desorption/ionization techniques

Laser diode thermal desorption

Laser diode thermal desorption LDTD)

Laser, ablation desorption/ionization

Laser-Assisted Field Desorption Mass Spectrometry

Laser-desorption mass spectrometer

Laser-desorption mass spectrometry

Laser-induced Thermal Desorption (LITD)

Laser-induced acoustic desorption/electrospray ionization

Laser-induced acoustic desorption/electrospray ionization mass spectrometry

Laser-induced desorption (LDMS)

Laser-induced desorption electronic mechanism

Laser-induced desorption mass spectrometry

Laser-induced desorption mass spectrometry techniques

Laser-induced desorption mechanism

Laser-induced thermal desorption

Lasers, types matrix-assisted laser desorption

MALDI (matrix assisted laser desorption

MALDI assisted laser desorption

MALDI 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

Malaria detection by laser desorption mass

Malaria detection by laser desorption mass spectrometry

Mass spectral techniques laser desorption

Mass spectrometry matrix-assisted laser desorption

Mass spectrometry matrix-assisted laser desorption ionisation

Mass spectrometry matrix-assisted laser desorption ionization

Mass spectrometry surface-enhanced laser desorption ionization

Mass spectroscopy matrix assisted laser desorption

Mass surface-assisted laser-desorption ionization

Material-enhanced laser desorption/ionization

Matrices matrix laser desorption/ionization time

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

Matrix assisted laser desorption/ionization peptide mapping

Matrix assisted laser desorption/ionization reflectron

Matrix assisted laser desorption/ionization spectrometry

Matrix assisted laser desorption/ionizationmass spectrometry

Matrix associated laser desorption ionisation

Matrix associated laser desorption ionisation MALDI)

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

Matrix-assisted laser desorption imaging

Matrix-assisted laser desorption imaging mass spectrometry

Matrix-assisted laser desorption instrumentation

Matrix-assisted laser desorption instruments

Matrix-assisted laser desorption ionisation

Matrix-assisted laser desorption ionisation MALDI) mass spectrometry

Matrix-assisted laser desorption ionisation applications

Matrix-assisted laser desorption ionisation matrices used

Matrix-assisted laser desorption ionisation-time of flight mass

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

Matrix-assisted laser desorption ionization

Matrix-assisted laser desorption ionization (MALDI fragment generation

Matrix-assisted laser desorption ionization Fourier transform mass spectrometry

Matrix-assisted laser desorption ionization MALDI)

Matrix-assisted laser desorption ionization MALDI) methods

Matrix-assisted laser desorption ionization MALDI-TOF)

Matrix-assisted laser desorption ionization advances

Matrix-assisted laser desorption ionization anthocyanins

Matrix-assisted laser desorption ionization automation

Matrix-assisted laser desorption ionization carotenoids

Matrix-assisted laser desorption ionization chemical structures

Matrix-assisted laser desorption ionization data acquisition

Matrix-assisted laser desorption ionization description

Matrix-assisted laser desorption ionization experiment

Matrix-assisted laser desorption ionization imaging process

Matrix-assisted laser desorption ionization in-source decay

Matrix-assisted laser desorption ionization mass

Matrix-assisted laser desorption ionization mass analyzers used with

Matrix-assisted laser desorption ionization mass spectrometry instrumentation

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

Matrix-assisted laser desorption mass

Matrix-assisted laser desorption mass spectra

Matrix-assisted laser desorption mass spectra fragments

Matrix-assisted laser desorption mass spectrometric imaging

Matrix-assisted laser desorption mass spectrometry, MALDI

Matrix-assisted laser desorption molecular-weight distribution

Matrix-assisted laser desorption orthogonal

Matrix-assisted laser desorption proteins

Matrix-assisted laser desorption quantitative

Matrix-assisted laser desorption resonance mass spectrometry

Matrix-assisted laser desorption spectrometers

Matrix-assisted laser desorption spectrometry

Matrix-assisted laser desorption tissue samples

Matrix-assisted laser desorption with time

Matrix-assisted laser desorption, atmospheric

Matrix-assisted laser desorption, atmospheric ionization

Matrix-assisted laser desorption-ionization MALDI) mass spectroscopy

Matrix-assisted laser desorption/ionisation MALDI)

Matrix-assisted laser desorption/ionisation technique

Matrix-assisted laser desorption/ionization Fourier transform

Matrix-assisted laser desorption/ionization MALDI matrices

Matrix-assisted laser desorption/ionization MALDI) spectrometry, degradation

Matrix-assisted laser desorption/ionization accuracy

Matrix-assisted laser desorption/ionization acquisition

Matrix-assisted laser desorption/ionization analysis

Matrix-assisted laser desorption/ionization and electrospray

Matrix-assisted laser desorption/ionization applications

Matrix-assisted laser desorption/ionization atmospheric pressure-MALDI

Matrix-assisted laser desorption/ionization biomolecules

Matrix-assisted laser desorption/ionization category

Matrix-assisted laser desorption/ionization chemical images

Matrix-assisted laser desorption/ionization crystallization

Matrix-assisted laser desorption/ionization delayed extraction

Matrix-assisted laser desorption/ionization development

Matrix-assisted laser desorption/ionization diseases

Matrix-assisted laser desorption/ionization in imaging mass spectrometry

Matrix-assisted laser desorption/ionization instrument

Matrix-assisted laser desorption/ionization interfaces

Matrix-assisted laser desorption/ionization invention

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

Matrix-assisted laser desorption/ionization membrane

Matrix-assisted laser desorption/ionization molar masses

Matrix-assisted laser desorption/ionization oligonucleotide

Matrix-assisted laser desorption/ionization poly

Matrix-assisted laser desorption/ionization polymers

Matrix-assisted laser desorption/ionization pulsed

Matrix-assisted laser desorption/ionization schematic

Matrix-assisted laser desorption/ionization sourc

Matrix-assisted laser desorption/ionization spatial resolution

Matrix-assisted laser desorption/ionization spectra

Matrix-assisted laser desorption/ionization surface preparation

Matrix-assisted laser desorption/ionization tandem mass

Matrix-assisted laser desorption/ionization tandem time of flight

Matrix-assisted laser desorption/ionization terminator

Matrix-assisted laser desorption/ionization time

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

Matrix-assisted laser desorption/ionization-imaging mass

Matrix-assisted laser desorption/ionization-imaging mass applications

Matrix-assisted laser desorption/ionization-imaging mass methods

Matrix-assisted laser desorption—ionization compositional analysis

Matrix-assisted laser-desorption

Matrix-assisted laser-desorption ionization MALDI) mass spectroscopy, group

Matrix-assisted laser-desorption ionization mass mapping

Matrix-assisted laser-desorption ionization plate

Matrix-assisted laser-desorption ionization possibilities

Matrix-assisted laser-desorption/ionization-mass spectroscopy analysis

Matrix-enhanced surface-assisted laser desorption/ionization mass spectrometry

Method matrix-assisted laser desorption

Nanoparticle-assisted laser desorption/ionization

Poly matrix assisted laser desorption

Pulsed laser desorption

Scanning laser desorption/ionization

Silver MALDI (matrix-assisted laser desorption

Single laser desorption-dissociation

Soft laser desorption

Surface Enhanced Laser Desorption Ionization Time-of-Flight SELDI-TOF)

Surface enhanced laser desorption ionisation

Surface enhanced laser desorption/ionization SELDI)

Surface-assisted laser desorption ionisation

Surface-assisted laser desorption ionization

Surface-assisted laser desorption/ionization SALDI)

Surface-enhanced laser desorption

Surface-enhanced laser desorption assessment

Surface-enhanced laser desorption ionization , tissue protein

Surface-enhanced laser desorption ionization protein chips with

Surface-enhanced laser desorption ionization technology

Surface-enhanced laser desorption/ionization

Surface-enhanced laser desorption/ionization time-of-flight

Temporal Evolution of a Laser Desorption Plume

UV matrix-assisted laser desorption/ionization

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