Search results for "perhe"

showing 10 items of 941 documents

Photochemical and photobiological studies with acridine and phenanthridine hydroperoxides in cell-free DNA.

1997

The acridine and phenanthridine hydroperoxides 3 and 7 were synthesized as photochemical hydroxyl radical sources for oxidative DNA damage studies. The generation of hydroxyl radicals upon UVA irradiation (lambda = 350 nm) was verified by trapping experiments with 5,5-dimethyl-1-pyrroline N-oxide and benzene. The enzymatic assays of the damage in cell-free DNA from bacteriophage PM2 caused by the acridine and phenanthridine hydroperoxides 3 and 7 under near-UVA irradiation revealed a wide range of DNA modifications. Particularly, extensive single-strand break formation and DNA base modifications sensitive to formamidopyrimidine DNA glycosylase (Fpg protein) were observed. In the photooxidat…

PhenanthridineCell-Free SystemDNA damageDNA SuperhelicalHydroxyl RadicalPhotochemistryUltraviolet RaysRadicalGeneral MedicineFormamidopyrimidine DNA glycosylasePhotochemistryBiochemistryPhotoinduced electron transferPeroxidesCyclic N-Oxideschemistry.chemical_compoundchemistryAcridineHydroxyl radicalSpin LabelsPhysical and Theoretical ChemistryOxidation-ReductionDNADNA DamagePhotochemistry and photobiology
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Understanding the nuclear structure of heavy elements

2013

The study of heavy and superheavy elements has always been one of the cornerstones of nuclear physics studies. These studies are driven by a desire to create new elements and to determine the limits of nuclear stability. Current experiments to synthesize new elements aim at the fabled ?Island of Stability? which should be found in the region of the next ?magic? numbers for protons and neutrons beyond Z?=?82 and N?=?126 (208Pb). The island is predicted to be around proton number 114?126 and neutron number 184. In recent years, another approach to understanding heavy nuclear systems has gained momentum, whereby nuclei with a much lower proton number of around 100 are studied in detail. The mo…

Physics010308 nuclear & particles physicsNuclear structureSuperheavy ElementsCondensed Matter Physics7. Clean energy01 natural sciencesAtomic and Molecular Physics and OpticsIsland of stabilityNuclear physicsNeutron number0103 physical sciencesNeutronAtomic number010306 general physicsMathematical PhysicsPhys. Scr. T152, 014016 (2013)

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Quasifission in heavy and superheavy element formation reactions

2016

Superheavy elements are created in the laboratory by the fusion of two heavy nuclei. The large Coulomb repulsion that makes superheavy elements decay also makes the fusion process that forms them very unlikely. Instead, after sticking together for a short time, the two nuclei usually come apart, in a process called quasifission. Mass-angle distributions give the most direct information on the characteristics and time scales of quasifission. A systematic study of carefully chosen mass-angle distributions has provided information on the global trends of quasifission. Large deviations from these systematics reveal the major role played by the nuclear structure of the two colliding nuclei in de…

Physics010308 nuclear & particles physicsPhysicsQC1-999Nuclear TheoryNuclear structureSuperheavy Elements01 natural sciencesCoulomb repulsionNuclear physicsChemistryInorganic & Nuclear0103 physical sciencesNaturvetenskapNuclear010306 general physicsNatural SciencesNuclear ExperimentEPJ Web of Conferences
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Laser Resonance Chromatography of Superheavy Elements.

2020

Optical spectroscopy constitutes the historical path to accumulate basic knowledge on the atom and its structure. Former work based on fluorescence and resonance ionization spectroscopy enabled identifying optical spectral lines up to element 102, nobelium. The new challenges faced in this research field are the refractory nature of the heavier elements and the decreasing production yields. A new concept of ion-mobility-assisted laser spectroscopy is proposed to overcome the sensitivity limits of atomic structure investigations persisting in the region of the superheavy elements. The concept offers capabilities of both broadband-level searches and high-resolution hyperfine spectroscopy of s…

PhysicsField (physics)Atomic Physics (physics.atom-ph)General Physics and Astronomychemistry.chemical_elementFOS: Physical sciencesSuperheavy ElementsSynthetic element7. Clean energy01 natural sciencesSpectral line3. Good healthPhysics - Atomic Physicschemistry0103 physical sciencesddc:530NobeliumAtomic physics010306 general physicsSpectroscopyHyperfine structureRefractory (planetary science)Physical review letters
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Mechanisms Suppressing Superheavy Element Yields in Cold Fusion Reactions.

2019

Superheavy elements are formed in fusion reactions which are hindered by fast nonequilibrium processes. To quantify these, mass-angle distributions and cross sections have been measured, at beam energies from below-barrier to 25% above, for the reactions of $^{48}\mathrm{Ca}$, $^{50}\mathrm{Ti}$, and $^{54}\mathrm{Cr}$ with $^{208}\mathrm{Pb}$. Moving from $^{48}\mathrm{Ca}$ to $^{54}\mathrm{Cr}$ leads to a drastic fall in the symmetric fission yield, which is reflected in the measured mass-angle distribution by the presence of competing fast nonequilibrium deep inelastic and quasifission processes. These are responsible for reduction of the compound nucleus formation probablity ${P}_{CN}$ …

PhysicsFissionGeneral Physics and AstronomyFission product yieldSuperheavy Elements01 natural sciences7. Clean energyCold fusionDiffusion process0103 physical sciencesNuclear fusionAtomic physics010306 general physicsEnergy (signal processing)Physical review letters
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Frontiers of Heavy - Ion Physics and Superheavy Elements

2003

This contribution will focus on three topics of GSI nuclear structure research: super heavy elements, direct mass measurements in the storage ring, and the measurement of spallation cross section in reversed kinematics. The GSI project for an extended synchrotron facility will be outlined.

PhysicsFocus (computing)Nuclear and High Energy PhysicsFissionNuclear structureTransactinide elementSuperheavy ElementsSynchrotronlaw.inventionNuclear physicsCross section (physics)Nuclear Energy and EngineeringlawHeavy ionSpallationStorage ringJournal of Nuclear Science and Technology
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Quasifission Dynamics in the Formation of Superheavy Elements

2017

The European physical journal / Web of Conferences 163, 00023 - (2017). doi:10.1051/epjconf/201716300023

PhysicsFusion010308 nuclear & particles physicsPhysicsQC1-999Electric potential energyNuclear TheoryNuclear structureSuperheavy Elements53001 natural sciencesNuclear physics0103 physical sciencesddc:530Nuclear Experiment010306 general physicsEPJ Web of Conferences
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Production and properties towards the island of stability

2016

The structure of the nuclei of the heaviest elements is discussed with emphasis on single-particle properties as determined by decay and inbeam spectroscopy. The basic features of production of these nuclei using fusion evaporation reactions will also be discussed. peerReviewed

PhysicsFusionta114010308 nuclear & particles physicsPhysicsQC1-999Nuclear TheoryEvaporation01 natural sciencesEngineering physicsIsland of stabilitysuperheavy elementsisland of stability0103 physical sciencesnuclear structure010306 general physicsSpectroscopyNuclear Experiment
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Recent Upgrades of the SHIPTRAP Setup: On the Finish Line Towards Direct Mass Spectroscopy of Superheavy Elements

2016

With the Penning-trap mass spectrometer SHIPTRAP at GSI, Darmstadt, it is possible to investigate exotic nuclei in the region of the heaviest elements. Few years ago, challenging experiments led to the direct measurements of the masses of neutron-deficient isotopes with Z = 102,103 around N = 152. Thanks to recent advances in cooling and ion-manipulation techniques, a major technical upgrade of the setup has been recently accomplished to boost its efficiency. At present, the gap to reach more rare and shorter-lived species at the limits of the nuclear landscape has been narrowed. ispartof: pages:423-429 ispartof: Acta Physica Polonica B vol:48 issue:3 pages:423-429 ispartof: location:Zakopa…

PhysicsIsotopePenning trapGeneral Physics and AstronomyFinish lineSuperheavy Elements[PHYS.NEXP]Physics [physics]/Nuclear Experiment [nucl-ex]Accelerator Physics and InstrumentationPenning trapMass spectrometry01 natural sciences7. Clean energy010305 fluids & plasmasNuclear physicsUpgrade0103 physical sciences[PHYS.PHYS.PHYS-INS-DET]Physics [physics]/Physics [physics]/Instrumentation and Detectors [physics.ins-det]010306 general physics
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Calculation of atomic properties of superheavy elements Z=110–112 and their ions

2020

We calculate the spectra, electric dipole transition rates, and isotope shifts of the superheavy elements Ds ($Z=110$), Rg ($Z=111$), and Cn ($Z=112$) and their ions. These calculations were performed using a recently developed, efficient version of the ab intio configuration-interaction combined with perturbation theory to treat distant effects. The successive ionization potentials of the three elements are also calculated and compared to lighter analogous elements.

PhysicsIsotopeSuperheavy Elements7. Clean energy01 natural sciencesSpectral line010305 fluids & plasmasIonAtomic propertiesIonization0103 physical sciencesAtomic physicsElectric dipole transitionPerturbation theory010306 general physicsPhysical Review A
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