flat-bed laser confocal scanners (Molecular Dynamics Inc)
90
Structured Review
Molecular Dynamics Inc
flat-bed laser confocal scanners
Flat Bed Laser Confocal Scanners, supplied by Molecular Dynamics Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/flat-bed+laser+confocal+scanners/flat+bed+laser+confocal+scanners/us07439056-472-96-111
Average 90 stars, based on 1 article reviews
Flat Bed Laser Confocal Scanners, supplied by Molecular Dynamics Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/flat-bed+laser+confocal+scanners/flat+bed+laser+confocal+scanners/us07439056-472-96-111
Average 90 stars, based on 1 article reviews
flat-bed laser confocal scanners - by Bioz Stars,
2026-09
90/100 stars
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Fluorescence:Article Title: Peelable and resealable devices for arraying materials Article Snippet: Dimensions and spatial arrangement of well bottoms 133, formed in the plane defined by surface 131 and 111, are such that the device of the present invention may be used for detection steps using instruments that include, but are not limited to, microscopes (including, but not limited to, bright field, phase contrast, and epi-illuminated fluorescence microscopes), MALDI (Matrix Assisted LASER Desorbtion Ionization) mass spectrometers (which are available from commercial sources, such as Applied Biosystems), ELISA-coupled document scanners, surface plasmon resonance (SPR) sensors (which are available from commercial sources, such as Biacore, GWC, Texas Instruments, and Leica), flat-bed laser confocal scanners (which are available from commercial sources, such as Fuji, Biorad and Article Title: Methods of detecting immobilized biomolecules Article Snippet: Dimensions and spatial arrangement of well bottoms 133, formed in the plane defined by surface 131 and 111, are such that the device of the present invention may be used for detection steps using instruments that include, but are not limited to, microscopes (including, but not limited to, bright field, phase contrast, and epi-illuminated fluorescence microscopes), MALDI (Matrix Assisted LASER Desorbtion Ionization) mass spectrometers (which are available from commercial sources, such as Applied Biosystems), ELISA-coupled document scanners, surface plasmon resonance (SPR) sensors (which are available from commercial sources, such as Biacore, GWC, Texas Instruments, and Leica), flat-bed laser confocal scanners (which are available from commercial sources, such as Fuji, Biorad and Article Title: Methods for processing biological materials using peelable and resealable devices Article Snippet: Examples of such instruments include, but are not limited to, microscopes (including, but not limited to, bright field, phase contrast, and epi-illuminated fluorescence microscopes), MALDI (Matrix Assisted LASER Desorbtion Ionization) mass spectrometers (which are available from commercial sources, such as Applied Biosystems), ELISA-coupled document scanners, Article Title: Peelable and resealable devices for biochemical assays Article Snippet: Dimensions and spatial arrangement of well bottoms 133, formed in the plane defined by surface 131 and 111, are such that the device of the present invention may be used for detection steps using instruments that include, but are not limited to, microscopes (including, but not limited to, bright field, phase contrast, and epi-illuminated fluorescence microscopes), MALDI (Matrix Assisted LASER Desorbtion Ionization) mass spectrometers (which are available from commercial sources, such as Applied Biosystems), ELISA-coupled document scanners, surface plasmon resonance (SPR) sensors (which are available from commercial sources, such as Biacore, GWC, Texas Instruments, and Leica), flat-bed laser confocal scanners (which are available from commercial sources, such as Fuji, Biorad and Article Title: Methods for processing biological materials using peelable and resealable devices Article Snippet: Dimensions and spatial arrangement of well bottoms 133, formed in the plane defined by surface 131 and 111, are such that the device of the present invention may be used for detection steps using instruments that include, but are not limited to, microscopes (including, but not limited to, bright field, phase contrast, and epi-illuminated fluorescence microscopes), MALDI (Matrix Assisted LASER Desorbtion Ionization) mass spectrometers (which are available from commercial sources, such as Applied Biosystems), ELISA-coupled document scanners, surface plasmon resonance (SPR) sensors (which are available from commercial sources, such as Biacore, GWC, Texas Instruments, and Leica), flat-bed laser confocal scanners (which are available from commercial sources, such as Fuji, Biorad and Enzyme-linked Immunosorbent Assay:Article Title: Peelable and resealable devices for arraying materials Article Snippet: Dimensions and spatial arrangement of well bottoms 133, formed in the plane defined by surface 131 and 111, are such that the device of the present invention may be used for detection steps using instruments that include, but are not limited to, microscopes (including, but not limited to, bright field, phase contrast, and epi-illuminated fluorescence microscopes), MALDI (Matrix Assisted LASER Desorbtion Ionization) mass spectrometers (which are available from commercial sources, such as Applied Biosystems), ELISA-coupled document scanners, surface plasmon resonance (SPR) sensors (which are available from commercial sources, such as Biacore, GWC, Texas Instruments, and Leica), flat-bed laser confocal scanners (which are available from commercial sources, such as Fuji, Biorad and Article Title: Methods of detecting immobilized biomolecules Article Snippet: Dimensions and spatial arrangement of well bottoms 133, formed in the plane defined by surface 131 and 111, are such that the device of the present invention may be used for detection steps using instruments that include, but are not limited to, microscopes (including, but not limited to, bright field, phase contrast, and epi-illuminated fluorescence microscopes), MALDI (Matrix Assisted LASER Desorbtion Ionization) mass spectrometers (which are available from commercial sources, such as Applied Biosystems), ELISA-coupled document scanners, surface plasmon resonance (SPR) sensors (which are available from commercial sources, such as Biacore, GWC, Texas Instruments, and Leica), flat-bed laser confocal scanners (which are available from commercial sources, such as Fuji, Biorad and Article Title: Methods for processing biological materials using peelable and resealable devices Article Snippet: Examples of such instruments include, but are not limited to, microscopes (including, but not limited to, bright field, phase contrast, and epi-illuminated fluorescence microscopes), MALDI (Matrix Assisted LASER Desorbtion Ionization) mass spectrometers (which are available from commercial sources, such as Applied Biosystems), ELISA-coupled document scanners, Article Title: Peelable and resealable devices for biochemical assays Article Snippet: Dimensions and spatial arrangement of well bottoms 133, formed in the plane defined by surface 131 and 111, are such that the device of the present invention may be used for detection steps using instruments that include, but are not limited to, microscopes (including, but not limited to, bright field, phase contrast, and epi-illuminated fluorescence microscopes), MALDI (Matrix Assisted LASER Desorbtion Ionization) mass spectrometers (which are available from commercial sources, such as Applied Biosystems), ELISA-coupled document scanners, surface plasmon resonance (SPR) sensors (which are available from commercial sources, such as Biacore, GWC, Texas Instruments, and Leica), flat-bed laser confocal scanners (which are available from commercial sources, such as Fuji, Biorad and Article Title: Methods for processing biological materials using peelable and resealable devices Article Snippet: Dimensions and spatial arrangement of well bottoms 133, formed in the plane defined by surface 131 and 111, are such that the device of the present invention may be used for detection steps using instruments that include, but are not limited to, microscopes (including, but not limited to, bright field, phase contrast, and epi-illuminated fluorescence microscopes), MALDI (Matrix Assisted LASER Desorbtion Ionization) mass spectrometers (which are available from commercial sources, such as Applied Biosystems), ELISA-coupled document scanners, surface plasmon resonance (SPR) sensors (which are available from commercial sources, such as Biacore, GWC, Texas Instruments, and Leica), flat-bed laser confocal scanners (which are available from commercial sources, such as Fuji, Biorad and SPR Assay:Article Title: Peelable and resealable devices for arraying materials Article Snippet: Dimensions and spatial arrangement of well bottoms 133, formed in the plane defined by surface 131 and 111, are such that the device of the present invention may be used for detection steps using instruments that include, but are not limited to, microscopes (including, but not limited to, bright field, phase contrast, and epi-illuminated fluorescence microscopes), MALDI (Matrix Assisted LASER Desorbtion Ionization) mass spectrometers (which are available from commercial sources, such as Applied Biosystems), ELISA-coupled document scanners, surface plasmon resonance (SPR) sensors (which are available from commercial sources, such as Biacore, GWC, Texas Instruments, and Leica), flat-bed laser confocal scanners (which are available from commercial sources, such as Fuji, Biorad and Article Title: Methods of detecting immobilized biomolecules Article Snippet: Dimensions and spatial arrangement of well bottoms 133, formed in the plane defined by surface 131 and 111, are such that the device of the present invention may be used for detection steps using instruments that include, but are not limited to, microscopes (including, but not limited to, bright field, phase contrast, and epi-illuminated fluorescence microscopes), MALDI (Matrix Assisted LASER Desorbtion Ionization) mass spectrometers (which are available from commercial sources, such as Applied Biosystems), ELISA-coupled document scanners, surface plasmon resonance (SPR) sensors (which are available from commercial sources, such as Biacore, GWC, Texas Instruments, and Leica), flat-bed laser confocal scanners (which are available from commercial sources, such as Fuji, Biorad and Article Title: Methods for processing biological materials using peelable and resealable devices Article Snippet: Examples of such instruments include, but are not limited to, microscopes (including, but not limited to, bright field, phase contrast, and epi-illuminated fluorescence microscopes), MALDI (Matrix Assisted LASER Desorbtion Ionization) mass spectrometers (which are available from commercial sources, such as Applied Biosystems), ELISA-coupled document scanners, Article Title: Peelable and resealable devices for biochemical assays Article Snippet: Dimensions and spatial arrangement of well bottoms 133, formed in the plane defined by surface 131 and 111, are such that the device of the present invention may be used for detection steps using instruments that include, but are not limited to, microscopes (including, but not limited to, bright field, phase contrast, and epi-illuminated fluorescence microscopes), MALDI (Matrix Assisted LASER Desorbtion Ionization) mass spectrometers (which are available from commercial sources, such as Applied Biosystems), ELISA-coupled document scanners, surface plasmon resonance (SPR) sensors (which are available from commercial sources, such as Biacore, GWC, Texas Instruments, and Leica), flat-bed laser confocal scanners (which are available from commercial sources, such as Fuji, Biorad and Article Title: Methods for processing biological materials using peelable and resealable devices Article Snippet: Dimensions and spatial arrangement of well bottoms 133, formed in the plane defined by surface 131 and 111, are such that the device of the present invention may be used for detection steps using instruments that include, but are not limited to, microscopes (including, but not limited to, bright field, phase contrast, and epi-illuminated fluorescence microscopes), MALDI (Matrix Assisted LASER Desorbtion Ionization) mass spectrometers (which are available from commercial sources, such as Applied Biosystems), ELISA-coupled document scanners, surface plasmon resonance (SPR) sensors (which are available from commercial sources, such as Biacore, GWC, Texas Instruments, and Leica), flat-bed laser confocal scanners (which are available from commercial sources, such as Fuji, Biorad and Imaging:Article Title: Peelable and resealable devices for arraying materials Article Snippet: Dimensions and spatial arrangement of well bottoms 133, formed in the plane defined by surface 131 and 111, are such that the device of the present invention may be used for detection steps using instruments that include, but are not limited to, microscopes (including, but not limited to, bright field, phase contrast, and epi-illuminated fluorescence microscopes), MALDI (Matrix Assisted LASER Desorbtion Ionization) mass spectrometers (which are available from commercial sources, such as Applied Biosystems), ELISA-coupled document scanners, surface plasmon resonance (SPR) sensors (which are available from commercial sources, such as Biacore, GWC, Texas Instruments, and Leica), flat-bed laser confocal scanners (which are available from commercial sources, such as Fuji, Biorad and Article Title: Methods of detecting immobilized biomolecules Article Snippet: Dimensions and spatial arrangement of well bottoms 133, formed in the plane defined by surface 131 and 111, are such that the device of the present invention may be used for detection steps using instruments that include, but are not limited to, microscopes (including, but not limited to, bright field, phase contrast, and epi-illuminated fluorescence microscopes), MALDI (Matrix Assisted LASER Desorbtion Ionization) mass spectrometers (which are available from commercial sources, such as Applied Biosystems), ELISA-coupled document scanners, surface plasmon resonance (SPR) sensors (which are available from commercial sources, such as Biacore, GWC, Texas Instruments, and Leica), flat-bed laser confocal scanners (which are available from commercial sources, such as Fuji, Biorad and Article Title: Methods for processing biological materials using peelable and resealable devices Article Snippet: Examples of such instruments include, but are not limited to, microscopes (including, but not limited to, bright field, phase contrast, and epi-illuminated fluorescence microscopes), MALDI (Matrix Assisted LASER Desorbtion Ionization) mass spectrometers (which are available from commercial sources, such as Applied Biosystems), ELISA-coupled document scanners, Article Title: Peelable and resealable devices for biochemical assays Article Snippet: Dimensions and spatial arrangement of well bottoms 133, formed in the plane defined by surface 131 and 111, are such that the device of the present invention may be used for detection steps using instruments that include, but are not limited to, microscopes (including, but not limited to, bright field, phase contrast, and epi-illuminated fluorescence microscopes), MALDI (Matrix Assisted LASER Desorbtion Ionization) mass spectrometers (which are available from commercial sources, such as Applied Biosystems), ELISA-coupled document scanners, surface plasmon resonance (SPR) sensors (which are available from commercial sources, such as Biacore, GWC, Texas Instruments, and Leica), flat-bed laser confocal scanners (which are available from commercial sources, such as Fuji, Biorad and Article Title: Methods for processing biological materials using peelable and resealable devices Article Snippet: Dimensions and spatial arrangement of well bottoms 133, formed in the plane defined by surface 131 and 111, are such that the device of the present invention may be used for detection steps using instruments that include, but are not limited to, microscopes (including, but not limited to, bright field, phase contrast, and epi-illuminated fluorescence microscopes), MALDI (Matrix Assisted LASER Desorbtion Ionization) mass spectrometers (which are available from commercial sources, such as Applied Biosystems), ELISA-coupled document scanners, surface plasmon resonance (SPR) sensors (which are available from commercial sources, such as Biacore, GWC, Texas Instruments, and Leica), flat-bed laser confocal scanners (which are available from commercial sources, such as Fuji, Biorad and |