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rapid scan signals  (Bruker Corporation)


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    Structured Review

    Bruker Corporation rapid scan signals
    Rapid Scan Signals, supplied by Bruker Corporation, used in various techniques. Bioz Stars score: 94/100, based on 145 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/rapid+scan+signal/us12000920-341-0-7?v=Bruker+Corporation
    Average 94 stars, based on 145 article reviews
    rapid scan signals - by Bioz Stars, 2026-07
    94/100 stars

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    Bruker Corporation rapid scan signals
    Rapid Scan Signals, supplied by Bruker Corporation, used in various techniques. Bioz Stars score: 94/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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    Bruker Corporation rapid scan epr rapid scan signals
    Drawing of L-band dielectric resonator assembly with wire-wound shield and <t>rapid</t> <t>scan</t> coils. The ‘adjustment screw’ adjusts the coupling of the microwaves into the resonator.
    Rapid Scan Epr Rapid Scan Signals, supplied by Bruker Corporation, used in various techniques. Bioz Stars score: 94/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/rapid+scan+signal/pmc04731870-107-0-8?v=Bruker+Corporation
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    94
    Bruker Corporation rapid scan epr signals
    Drawing of L-band dielectric resonator assembly with wire-wound shield and <t>rapid</t> <t>scan</t> coils. The ‘adjustment screw’ adjusts the coupling of the microwaves into the resonator.
    Rapid Scan Epr Signals, supplied by Bruker Corporation, used in various techniques. Bioz Stars score: 94/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
    https://www.bioz.com/product/rapid+scan+signal/pmc05225971-44-11-19?v=Bruker+Corporation
    Average 94 stars, based on 1 article reviews
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    94/100 stars
      Buy from Supplier

    Image Search Results


    Drawing of L-band dielectric resonator assembly with wire-wound shield and rapid scan coils. The ‘adjustment screw’ adjusts the coupling of the microwaves into the resonator.

    Journal: Radiation measurements

    Article Title: Rapid scan electron paramagnetic resonance at 1.0 GHz of defect centers in γ-irradiated organic solids

    doi: 10.1016/j.radmeas.2015.12.011

    Figure Lengend Snippet: Drawing of L-band dielectric resonator assembly with wire-wound shield and rapid scan coils. The ‘adjustment screw’ adjusts the coupling of the microwaves into the resonator.

    Article Snippet: Rapid-scan EPR Rapid-scan signals were recorded with a Bruker SpecJet II digitizer, using a timebase of 10 ns.

    Techniques:

    Power saturation curves for low-field peak in the spectrum of glycylglycine obtained by CW and sinusoidal rapid scan. The points that correspond to the acquisition conditions for the rapid-scan (Figure 5A) or CW (Figure 5C) spectra are circled, or marked with an arrow, respectively.

    Journal: Radiation measurements

    Article Title: Rapid scan electron paramagnetic resonance at 1.0 GHz of defect centers in γ-irradiated organic solids

    doi: 10.1016/j.radmeas.2015.12.011

    Figure Lengend Snippet: Power saturation curves for low-field peak in the spectrum of glycylglycine obtained by CW and sinusoidal rapid scan. The points that correspond to the acquisition conditions for the rapid-scan (Figure 5A) or CW (Figure 5C) spectra are circled, or marked with an arrow, respectively.

    Article Snippet: Rapid-scan EPR Rapid-scan signals were recorded with a Bruker SpecJet II digitizer, using a timebase of 10 ns.

    Techniques:

    Power saturation curves for the central peak in the spectrum of irradiated dimethyl malonic acid obtained by CW and sinusoidal rapid scan. The point that corresponds to the acquisition conditions for the rapid-scan (Figure 8A) or CW spectra (Figure 8C) are circled, or marked with an arrow, respectively.

    Journal: Radiation measurements

    Article Title: Rapid scan electron paramagnetic resonance at 1.0 GHz of defect centers in γ-irradiated organic solids

    doi: 10.1016/j.radmeas.2015.12.011

    Figure Lengend Snippet: Power saturation curves for the central peak in the spectrum of irradiated dimethyl malonic acid obtained by CW and sinusoidal rapid scan. The point that corresponds to the acquisition conditions for the rapid-scan (Figure 8A) or CW spectra (Figure 8C) are circled, or marked with an arrow, respectively.

    Article Snippet: Rapid-scan EPR Rapid-scan signals were recorded with a Bruker SpecJet II digitizer, using a timebase of 10 ns.

    Techniques: Irradiation

    Spectra of irradiated glycylglycine. (A) Absorption spectrum obtained by deconvolution of rapid scan signal acquired with 196608 averages. (B) Derivative of deconvolved rapid-scan spectrum. (C) Conventional first-derivative CW spectrum acquired with 0.12 mT modulation amplitude.

    Journal: Radiation measurements

    Article Title: Rapid scan electron paramagnetic resonance at 1.0 GHz of defect centers in γ-irradiated organic solids

    doi: 10.1016/j.radmeas.2015.12.011

    Figure Lengend Snippet: Spectra of irradiated glycylglycine. (A) Absorption spectrum obtained by deconvolution of rapid scan signal acquired with 196608 averages. (B) Derivative of deconvolved rapid-scan spectrum. (C) Conventional first-derivative CW spectrum acquired with 0.12 mT modulation amplitude.

    Article Snippet: Rapid-scan EPR Rapid-scan signals were recorded with a Bruker SpecJet II digitizer, using a timebase of 10 ns.

    Techniques: Irradiation

    Spectra of irradiated dimethyl malonic acid. (A) Absorption spectrum obtained by deconvolution of rapid scan signal acquired with 479232 averages. (B) Derivative of deconvolved rapid-scan spectrum. (C) Conventional first-derivative CW spectrum acquired with 0.1 mT modulation amplitude.

    Journal: Radiation measurements

    Article Title: Rapid scan electron paramagnetic resonance at 1.0 GHz of defect centers in γ-irradiated organic solids

    doi: 10.1016/j.radmeas.2015.12.011

    Figure Lengend Snippet: Spectra of irradiated dimethyl malonic acid. (A) Absorption spectrum obtained by deconvolution of rapid scan signal acquired with 479232 averages. (B) Derivative of deconvolved rapid-scan spectrum. (C) Conventional first-derivative CW spectrum acquired with 0.1 mT modulation amplitude.

    Article Snippet: Rapid-scan EPR Rapid-scan signals were recorded with a Bruker SpecJet II digitizer, using a timebase of 10 ns.

    Techniques: Irradiation

    Parameters for CW and rapid scans

    Journal: Radiation measurements

    Article Title: Rapid scan electron paramagnetic resonance at 1.0 GHz of defect centers in γ-irradiated organic solids

    doi: 10.1016/j.radmeas.2015.12.011

    Figure Lengend Snippet: Parameters for CW and rapid scans

    Article Snippet: Rapid-scan EPR Rapid-scan signals were recorded with a Bruker SpecJet II digitizer, using a timebase of 10 ns.

    Techniques:

    Spectra for an arbitrary orientation of irradiated malonic acid crystals. (A) Absorption spectrum obtained by deconvolution of rapid scan signal acquired with 947200 averages (B) Derivative of deconvolved rapid-scan spectrum. (C) Conventional first-derivative CW spectrum acquired with 0.06 mT modulation amplitude.

    Journal: Radiation measurements

    Article Title: Rapid scan electron paramagnetic resonance at 1.0 GHz of defect centers in γ-irradiated organic solids

    doi: 10.1016/j.radmeas.2015.12.011

    Figure Lengend Snippet: Spectra for an arbitrary orientation of irradiated malonic acid crystals. (A) Absorption spectrum obtained by deconvolution of rapid scan signal acquired with 947200 averages (B) Derivative of deconvolved rapid-scan spectrum. (C) Conventional first-derivative CW spectrum acquired with 0.06 mT modulation amplitude.

    Article Snippet: Rapid-scan EPR Rapid-scan signals were recorded with a Bruker SpecJet II digitizer, using a timebase of 10 ns.

    Techniques: Irradiation

    Spectra of irradiated 2-amino isobutyric acid. (A) Absorption spectrum obtained by deconvolution of rapid scan signal acquired with 39936 averages. (B) Derivative of deconvolved rapid-scan spectrum. (C) Conventional first-derivative CW EPR spectrum acquired with 0.07 mT modulation amplitude.

    Journal: Radiation measurements

    Article Title: Rapid scan electron paramagnetic resonance at 1.0 GHz of defect centers in γ-irradiated organic solids

    doi: 10.1016/j.radmeas.2015.12.011

    Figure Lengend Snippet: Spectra of irradiated 2-amino isobutyric acid. (A) Absorption spectrum obtained by deconvolution of rapid scan signal acquired with 39936 averages. (B) Derivative of deconvolved rapid-scan spectrum. (C) Conventional first-derivative CW EPR spectrum acquired with 0.07 mT modulation amplitude.

    Article Snippet: Rapid-scan EPR Rapid-scan signals were recorded with a Bruker SpecJet II digitizer, using a timebase of 10 ns.

    Techniques: Irradiation

    Signal-to-noise ratios of CW and  rapid scan  spectra

    Journal: Radiation measurements

    Article Title: Rapid scan electron paramagnetic resonance at 1.0 GHz of defect centers in γ-irradiated organic solids

    doi: 10.1016/j.radmeas.2015.12.011

    Figure Lengend Snippet: Signal-to-noise ratios of CW and rapid scan spectra

    Article Snippet: Rapid-scan EPR Rapid-scan signals were recorded with a Bruker SpecJet II digitizer, using a timebase of 10 ns.

    Techniques: Irradiation