Harmonised techniqueNon-exclusive mapping

Mossbauer spectroscopy

Mossbauer measurements, including isotope-labelled and variable-temperature variants.

17primary papers
29mapped measurements
109linked results
8raw method labels
The harmonised label does not replace the method

Every source method stays verbatim. Subtypes retain distinctions such as ATR versus transmission IR, powder versus single-crystal diffraction, and two- versus four-contact transport.

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The same technique may serve transport, electrochemistry, sensing or another scientific purpose.

Mapped measurements

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29 measurements

SpectroscopyUnspecified subtype

Ex-situ 57Fe Mossbauer spectroscopy of electrodes

2022 · A Rationally Designed Iron–Dihydroxybenzoquinone Metal–Organic Framework as Practical Cathode Material for Rechargeable Batteries

Fe2(DHBQ)3 electrode A/default (AM/KB/PTFE = 6:3:1, low loading) · Electrode · Discharged and recharged electrodes compared with pristine powder; 77 K.

SpectroscopyUnspecified subtype

57Fe Mossbauer spectroscopy

2022 · A Rationally Designed Iron–Dihydroxybenzoquinone Metal–Organic Framework as Practical Cathode Material for Rechargeable Batteries

air-stabilised Fe2(DHBQ)3 powder · Powder · Recorded at 77 K; symmetric Lorentzian quadrupole doublets.

SpectroscopyUnspecified subtype

57Fe Mossbauer spectroscopy

2022 · Generation of Environmentally Persistent Free Radicals on Metal-Organic Frameworks

MIL-100(Fe) powder · Powder · As-synthesised MIL-100(Fe); Wissel iso-accelerated spectrometer with 57Co/Rh source.

SpectroscopyUnspecified subtype

Mossbauer spectroscopy

2022 · Size-Dependent Properties of Solution-Processable Conductive MOF Nanocrystals

Fe(TA)2 nanoparticles, 5.5 nm Scherrer size · Powder · Smallest Fe(TA)2 particles measured under N2 and after air exposure; selected sizes measured in air.

SpectroscopyUnspecified subtype

Zero-field 57Fe Mossbauer spectroscopy

2021 · An Electrically Conducting Three-Dimensional Iron–Catecholate Porous Framework

Fe-HHTP-MOF black microcrystalline powder · Powder · WissEl MRG-500, 57Co/Rh source, 77 K, constant acceleration mode; isomer shifts versus alpha-iron at 300 K.

SpectroscopyUnspecified subtype

57Fe Mossbauer spectroscopy

2020 · Paramagnetic Conducting Metal–Organic Frameworks with Three-Dimensional Structure

Fe-THBQ black powder · Powder · Topologic 500A spectrometer and proportional counter; 57Co(Rh) gamma-ray source; samples about 10 mg cm^-2 Fe; velocity calibrated with alpha-iron foil; analysed using MossWinn.

SpectroscopyUnspecified subtype

57Fe Mossbauer spectroscopy

2020 · Valence-Dependent Electrical Conductivity in a 3D Tetrahydroxyquinone-Based Metal-Organic Framework

FeTHQ as-prepared powder · Powder · Zero applied field Mossbauer spectrum fitted by quadrupole doublets; spectra collected at 80 K and 6 K.

SpectroscopyUnspecified subtype

57Fe Mossbauer spectroscopy

2020 · Valence-Dependent Electrical Conductivity in a 3D Tetrahydroxyquinone-Based Metal-Organic Framework

FeTHQ_ox · Pellet · Zero applied field Mossbauer spectrum of air-oxidised FeTHQ_ox fitted by three species at 80 K.

SpectroscopyUnspecified subtype

57Fe Mossbauer spectroscopy

2020 · Valence-Dependent Electrical Conductivity in a 3D Tetrahydroxyquinone-Based Metal-Organic Framework

FeTHQ_red4 · Pellet · Zero applied field Mossbauer spectrum of FeTHQ_red4 fitted at 80 K.

SpectroscopyUnspecified subtype

57Fe Mossbauer spectroscopy

2020 · Valence-Dependent Electrical Conductivity in a 3D Tetrahydroxyquinone-Based Metal-Organic Framework

FeTHQ_redox0.5 · Pellet · Mossbauer spectrum of FeTHQ_redox0.5 after reducing air-oxidised FeTHQ_ox.

SpectroscopyUnspecified subtype

57Fe Mossbauer spectroscopy

2020 · Valence-Dependent Electrical Conductivity in a 3D Tetrahydroxyquinone-Based Metal-Organic Framework

FeTHQ_redox2 · Pellet · Mossbauer spectrum of FeTHQ_redox2 after reducing air-oxidised FeTHQ_ox.

SpectroscopyUnspecified subtype

57Fe Mossbauer spectroscopy

2019 · A semiconducting layered metal-organic framework magnet

as-synthesised K3Fe2[PcFe-O8] dark black powder · Powder · Mossbauer spectra collected at 300 K and 25 K; fitted with Moessfit.

SpectroscopyUnspecified subtype

57Fe Mossbauer spectroscopy

2019 · Redox-Active 1D Coordination Polymers of Iron-Sulfur Clusters

Compound 1 as-synthesized black powder · Powder · As-synthesized compound 1 at 80 K

SpectroscopyUnspecified subtype

57Fe Mossbauer spectroscopy

2019 · Redox-Active 1D Coordination Polymers of Iron-Sulfur Clusters

Compound 2 as-synthesized black powder · Powder · As-synthesized compound 2 at 80 K

SpectroscopyUnspecified subtype

57Fe Mossbauer spectroscopy

2019 · Redox-Active 1D Coordination Polymers of Iron-Sulfur Clusters

Compound 2 reductively doped solid · Powder · Reductively doped compound 2 at 80 K

SpectroscopyUnspecified subtype

57Fe Mossbauer spectroscopy

2018 · A coronene-based semiconducting two-dimensional metal-organic framework with ferromagnetic behavior

PTC-Fe powder magnetic sample · Powder · Spectra collected between 5 and 294 K with 57Co/Rh source; thin sheets of PTC-Fe; analysed with MossWinn.

SpectroscopyUnspecified subtype

Iron-57 Mossbauer spectroscopy

2018 · Electron delocalization and charge mobility as a function of reduction in a metal-organic framework

Bulk KxFe2(BDP)3 powder series · Powder · 290 K spectra over +/-12 mm s-1 with Co-57/Rh source; variable-temperature spectra for x = 0 and 1.1.

SpectroscopyUnspecified subtype

57Fe Mossbauer spectroscopy

2018 · High-mobility band-like charge transport in a semiconducting two-dimensional metal–organic framework

Large-area free-standing Fe3(THT)2(NH4)3 multilayer film · Thin Film · Mossbauer spectra collected from 5.2 K to 292 K using a 57Co/Rh source; 55 mg sample in Plexiglass container.

SpectroscopyUnspecified subtype

zero-field Fe-57 Mossbauer spectroscopy

2017 · 2D Conductive Iron-Quinoid Magnets Ordering up to Tc = 105 K via Heterogenous Redox Chemistry

compound 2 black crystals · Single Crystal · Spectra for compound 2 at 80 and 120 K; cobalt-57 rhodium source; calibrated with alpha-iron foil at 295 K

SpectroscopyUnspecified subtype

57Fe Moessbauer spectroscopy with Lorentzian fitting

2017 · Is iron unique in promoting electrical conductivity in MOFs?

pressed pellet of Fe2Cl2(BTDD)(DMF)2 · Pellet · Fe-based MOFs transferred under air-free conditions; spectra recorded at 80 K, with Fe triazolate also measured at 298 K.

SpectroscopyUnspecified subtype

57Fe Moessbauer spectroscopy with Lorentzian fitting

2017 · Is iron unique in promoting electrical conductivity in MOFs?

pressed pellet of Fe2(DOBDC)(DMF)2 · Pellet · Fe-based MOFs transferred under air-free conditions; spectra recorded at 80 K, with Fe triazolate also measured at 298 K.

SpectroscopyUnspecified subtype

57Fe Moessbauer spectroscopy with Lorentzian fitting

2017 · Is iron unique in promoting electrical conductivity in MOFs?

pressed pellet of Fe2(DSBDC)(DMF)2 · Pellet · Fe-based MOFs transferred under air-free conditions; spectra recorded at 80 K, with Fe triazolate also measured at 298 K.

SpectroscopyUnspecified subtype

57Fe Moessbauer spectroscopy with Lorentzian fitting

2017 · Is iron unique in promoting electrical conductivity in MOFs?

pressed pellet of Fe(1,2,3-triazolate)2 · Pellet · Fe-based MOFs transferred under air-free conditions; spectra recorded at 80 K, with Fe triazolate also measured at 298 K.

SpectroscopyUnspecified subtype

57Fe Mossbauer spectroscopy

2015 · Electronic Conductivity, Ferrimagnetic Ordering, and Reductive Insertion Mediated by Organic Mixed-Valence in a Ferric Semiquinoid Metal-Organic Framework

Microcrystalline/crystalline powder of 1 · Powder · Constant acceleration spectrometer with cobalt-57 rhodium source; calibrated with alpha-iron foil; samples prepared in Ar glovebox and diluted with boron nitride.

SpectroscopyUnspecified subtype

57Fe Mossbauer spectroscopy

2015 · Electronic Conductivity, Ferrimagnetic Ordering, and Reductive Insertion Mediated by Organic Mixed-Valence in a Ferric Semiquinoid Metal-Organic Framework

Dark brown microcrystalline powder of Na3.2(NBu4)1.8Fe2(dhbq)3 · Powder · 100 K fitted spectrum of strongly reduced Na3.2(NBu4)1.8Fe2(dhbq)3.

SpectroscopyUnspecified subtype

57Fe Mossbauer spectroscopy

2015 · Million-fold electrical conductivity enhancement in Fe2(DEBDC) versus Mn2(DEBDC) (E = S, O)

Fe2(DOBDC)(DMF)2.x(DMF) · Pellet · Solid sample suspended in Apiezon M grease; measured at 80 K with 57Co source; fit to Lorentzian lines.

SpectroscopyUnspecified subtype

57Fe Mossbauer spectroscopy

2015 · Million-fold electrical conductivity enhancement in Fe2(DEBDC) versus Mn2(DEBDC) (E = S, O)

Fe2(DSBDC)(DMF)2.x(DMF) · Pellet · Solid sample suspended in Apiezon M grease; measured at 80 K with 57Co source; fit to Lorentzian lines.

SpectroscopyUnspecified subtype

Fe-57 Mossbauer spectroscopy

1990 · New coordination polymers of 1,4-bis(2′-hydroxyphenylazomethine) phenylene

Fe-BHPAP polychelate powder · Powder · Austin Science Associates constant acceleration drive with flyback mode; isomer shifts referenced to iron at room temperature.

SpectroscopyUnspecified subtype

57Fe Mossbauer spectroscopy

1984 · Cofacial Assembly of Metallomacrocycles as an Approach to Controlling Lattice Architecture in Low-Dimensional Molecular Solids. Chemical, Structural, Oxidation-State, Transport, and Optical Properties of the Coordination Polymer [Fe(phthalocyaninato)(μ-pyrazine)]n and the Consequences of Halogen Doping

Table V Fe(Pc)(pyz) Mossbauer series · Powder · Room temperature or 4.2 K constant-acceleration spectra; fitted to a single quadrupolar doublet.

Raw method vocabulary

These are the exact source-preserving method strings consolidated by this technique group.

Show 8 reported method labels
Raw method labelMapped measurements
57Fe Mossbauer spectroscopy19
57Fe Moessbauer spectroscopy with Lorentzian fitting4
Iron-57 Mossbauer spectroscopy1
zero-field Fe-57 Mossbauer spectroscopy1
Mossbauer spectroscopy1
Ex-situ 57Fe Mossbauer spectroscopy of electrodes1
Fe-57 Mossbauer spectroscopy1
Zero-field 57Fe Mossbauer spectroscopy1