0000000000105292

AUTHOR

Hiromitsu Haba

showing 9 related works from this author

Extraction behavior of rutherfordium into tributylphosphate from hydrochloric acid

2007

The extraction behavior of rutherfordium (Rf) into tributylphosphate (TBP) from hydrochloric acid (HCl) has been studied together with those of the lighter group-4 elements Zr and Hf. The extractability of261Rf,169Hf, and85Zr into TBP was investigated under identical conditions in 7.2–8.0 M HCl by on-line reversed-phase extraction chromatography. The percent extractions of Rf, Hf, and Zr into the TBP resin increase steeply with increasing HCl concentration, and the order of extraction is Zr > Hf ≈ Rf. By considering the order of chloride complexation among these elements, it is suggested that the stability of the TBP complex of Rf tetrachloride is lower than those of Zr and Hf.

chemistry.chemical_compoundchemistryRutherfordiumTetrachlorideInorganic chemistryExtraction (chemistry)medicinechemistry.chemical_elementHydrochloric acidPhysical and Theoretical ChemistryChloridemedicine.drugNuclear chemistryRadiochimica Acta
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Fluoride Complexation of Element 104, Rutherfordium (Rf), Investigated by Cation-exchange Chromatography

2008

We report on new and much more precise cation-exchange data of element 104, rutherfordium (Rf), in the fluoride ion concentration [F−] range of 5.29×10−5−1.04×10−3 M. The result based on one-atom-a...

chemistry.chemical_compoundchemistryRutherfordiumInorganic chemistryIon chromatographyAnalytical chemistrychemistry.chemical_elementGeneral ChemistryFluorideIonChemistry Letters
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Anionic Fluoro Complex of Element 105, Db

2009

We report on the characteristic anion-exchange behavior of the superheavy element dubnium (Db) with atomic number Z=105 in HF/HNO3 solution at the fluoride ion concentration [F−]=0.003 M. The resul...

Dubniumchemistry.chemical_compoundChemistryStereochemistryPhysical chemistrychemistry.chemical_elementGeneral ChemistryAtomic numberFluorideIonChemistry Letters
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Decomposition studies of group 6 hexacarbonyl complexes. Part 1: Production and decomposition of Mo(CO)6 and W(CO)6

2015

Abstract Chemical studies of superheavy elements require fast and efficient techniques, due to short half-lives and low production rates of the investigated nuclides. Here, we advocate for using a tubular flow reactor for assessing the thermal stability of the Sg carbonyl complex – Sg(CO)6. The experimental setup was tested with Mo and W carbonyl complexes, as their properties are established and supported by theoretical predictions. The suggested approach proved to be effective in discriminating between the thermal stabilities of Mo(CO)6 and W(CO)6. Therefore, an experimental verification of the predicted Sg–CO bond dissociation energy seems to be feasible by applying this technique. By in…

Inorganic chemistryMetal carbonyl02 engineering and technology010402 general chemistry01 natural sciences7. Clean energythermal stability540 ChemistryseaborgiumThermal stabilityNuclideGas compositionPhysical and Theoretical Chemistrycarbonyl complexegroup 6ChemistrytransactinideTransition metals021001 nanoscience & nanotechnologyDecompositionBond-dissociation energy0104 chemical sciencesVolumetric flow rateYield (chemistry)570 Life sciences; biologyPhysical chemistry0210 nano-technology
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Measurement of the Md3+/Md2+ Reduction Potential Studied with Flow Electrolytic Chromatography

2013

The reduction behavior of mendelevium (Md) was studied using a flow electrolytic chromatography apparatus. By application of the appropriate potentials on the chromatography column, the more stable Md(3+) is reduced to Md(2+). The reduction potential of the Md(3+) + e(-) → Md(2+) couple was determined to be -0.16 ± 0.05 V versus a normal hydrogen electrode.

ChromatographyStandard hydrogen electrodeFlow (psychology)Analytical chemistrychemistry.chemical_elementElectrolyteIonMendeleviumInorganic ChemistryReduction (complexity)chemistryPhysical and Theoretical ChemistryLuminescenceChromatography columnInorganic Chemistry
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Fluoride Complexation of Element 104, Rutherfordium

2004

Fluoride complexation of element 104, rutherfordium (Rf), produced in the 248Cm(18O,5n)261Rf reaction has been studied by anion-exchange chromatography on an atom-at-a-time scale. The anion-exchange chromatographic behavior of Rf was investigated in 1.9-13.9 M hydrofluoric acid together with those of the group-4 elements Zr and Hf produced in the 18O-induced reactions on Ge and Gd targets, respectively. It was found that the adsorption behavior of Rf on anion-exchange resin is quite different from those of Zr and Hf, suggesting the influence of relativistic effects on the fluoride complexation of Rf.

DubniumIon chromatographyInorganic chemistryAnalytical chemistrychemistry.chemical_elementGeneral ChemistryBiochemistryCatalysisPartition coefficientchemistry.chemical_compoundColloid and Surface ChemistryAdsorptionHydrofluoric acidchemistryRutherfordiumFluorideJournal of the American Chemical Society
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Fluorido Complex Formation of Element 104, Rutherfordium (Rf)

2011

We have investigated the cation-exchange behavior of element 104, rutherfordium (Rf), together with its lighter group-4 homologs Zr and Hf, and the tetravalent pseudo-homolog Th in HF/HNO3 mixed so...

CrystallographychemistryComplex formationRutherfordiumchemistry.chemical_elementGeneral ChemistryBulletin of the Chemical Society of Japan
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TASCAを用いたCn, Nh, Fl化学実験のためのHg, Tl, PbのSiO2及びAu表面に対するオンライン化学吸着研究

2018

Online gas-solid adsorption studies with single atom quantities of Hg, Tl, and Pb on SiO$_{2}$ and Au surfaces were carried out using short-lived radioisotopes with half-lives in the range of 4-49 s. This is a model study to measure adsorption enthalpies of superheavy elements Cn, Nh, and Fl. The short-lived isotopes were produced and separated by the gas-filled recoil separator TASCA at GSI. The products were stopped in He gas, and flushed into gas chromatography columns made of Si detectors whose surfaces were covered by SiO$_{2}$ or Au. The short-lived Tl and Pb were successfully measured by the Si detectors with the SiO$_{2}$ surface at room temperature. On the other hand, the Hg did no…

Analytical chemistrychemistry.chemical_elementElectronic structure010402 general chemistry01 natural sciencesadsorption studiethermochromatographyHomologs of superheavy elementRELATIVISTIC PERIODIC DFTMetalGSIAdsorptionCHEMISTRY0103 physical sciencesisothermal chromatographyPhysical and Theoretical ChemistrySUPERHEAVY ELEMENTS010306 general physicsCoperniciumChemistryQUARTZ SURFACE0104 chemical sciencesgas phase chromatography of single atomHEAVIEST ELEMENTSFleroviumELECTRONIC-STRUCTUREvisual_artYield (chemistry)METALvisual_art.visual_art_mediumGas chromatographyRelativistic quantum chemistryphysical preseparationSYSTEMRadiochimica acta
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Chemical studies of Fl (element 114): Heaviest chemically studied element

2017

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