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NSR database version of May 10, 2024.

Search: Author = J.Kajfosz

Found 15 matches.

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1973HO24      Nucl.Phys. A209, 245 (1973)

J.Honzatko, J.Sebek, J.Kajfosz, J.Stehno, Z.Kosina, K.Konecny

A Study of the 59Co(n, γ) Reaction with a Polarized Target and Polarized Thermal Neutrons

NUCLEAR REACTIONS 59Co(polarized n, γ), E=thermal, polarized nuclei; measured Iγ(θ). 60Co levels deduced J. Single crystal Co- Fe target.

doi: 10.1016/0375-9474(73)90576-9
Citations: PlumX Metrics


1972HO12      Phys.Lett. 38B, 499 (1972)

J.Honzatko, J.Kajfosz

Interference of the Two Capturing States in (n, γ) Polarization Experiments

doi: 10.1016/0370-2693(72)90526-6
Citations: PlumX Metrics


1972HO46      Nucl.Instrum.Methods 103, 617 (1972)

J.Honzatko, J.Kajfosz

A Criterion for the Solid Angle Optimization in the Angular Correlation Measurements


1971HO30      Nucl.Phys. A174, 668 (1971)

J.Honzatko, J.Kajfosz, Z.Kosina

Measurement of the Linear Polarization of Low-Energy Capture γ-Rays from the 35Cl(n, γ) Reaction

NUCLEAR REACTIONS 35Cl(n, γ), E=thermal; measured γ-linear polarization; 36Cl levels deduced J, γ-mixing. Natural target.

doi: 10.1016/0375-9474(71)90415-5
Citations: PlumX Metrics


1970HO35      Czech.J.Phys. 20B, 1059 (1970)

J.Honzatko, J.Kajfosz, K.Konecny

Branching Ratios and Intensities of Some Transitions in 35Cl(n, γ)36Cl Reaction

NUCLEAR REACTIONS 35Cl(n, γ), E not given; measured Eγ, Iγ. 36Cl deduced γ-branching. Ge(Li) detector.


1968HO08      Czech.J.Phys. 18B, 34 (1968)

J.Honzatko, J.Kajfosz, J.Kopecky

Mixing Ratio of the 0.34 MeV (M1+E2) Transition in 49Ti

NUCLEAR REACTIONS 48Ti(n, γ), E=thermal measured γ directional polarization correlation. 49Ti transition deduced γ-mixing ratio.


1968KA12      Nucl.Phys. A120, 225 (1968)

J.Kajfosz, J.Kopecky, J.Honzatko

Search for Time-Reversal Non-Invariance in Strong Interactions

NUCLEAR REACTIONS 48Ti(polarized n, γ), E=thermal; measured Eγ, γγ(θ). 49Ti deduced validity of time-reversal invariance. Natural target.

doi: 10.1016/0375-9474(68)90070-5
Citations: PlumX Metrics


1968KA34      Czech.J.Phys. 18B, 152 (1968)

J.Kajfosz, J.Honzatko

Applicability of Cl36 for Verifying the Time Reversal Invariance of Nuclear Forces

NUCLEAR REACTIONS 36Cl(n, γ), measured nothing, analyzed data, deduced applicability for time reversal invariance. 37Cl levels deduced J, π, γ-mixing.

doi: 10.1007/BF01690654
Citations: PlumX Metrics


1967HO07      Czech.J.Phys. 17B, 259 (1967)

J.Honzatko, J.Kajfosz

Correlation Function of a γ-γ Cascade (0.34 MeV - 1.38 Mev) on 49Ti

NUCLEAR STRUCTURE 49Ti; measured not abstracted; deduced nuclear properties.


1966KA14      Phys.Letters 20, 284 (1966)

J.Kajfosz, J.Kopecky, J.Honzatko

A Test for Time-Reversal Invariance in Nuclear Forces

doi: 10.1016/0031-9163(66)90366-0
Citations: PlumX Metrics


1965KO10      Nucl.Phys. 68, 449 (1965)

J.Kopecky, J.Kajfosz, B.Chalupa

Circular Polarization of Gamma-Rays Following the Capture of Polarized Neutrons on S, V, Co, Cu and Zr

NUCLEAR REACTIONS S, V, Co, Cu, Zr(polarized n, γ), E=thermal; measured Eγ, Iγ, γ-polarization. 33S, 52V, 60Co, 64Cu, 93Zr deduced J, π. Natural targets.

doi: 10.1016/0029-5582(65)90661-9
Citations: PlumX Metrics


1961UR01      Czechoslov.J.Phys. 11B, No.8, 559 (1961)

J.Urbanec, J.Kajfosz, J.Kopecky

NUCLEAR STRUCTURE 60Co; measured not abstracted; deduced nuclear properties.


1960KO07      Czechoslov.J.Phys. 10B, 119 (1960)

J.Kopecky, J.Kajfosz, J.Urbanec

Radiative Capture of Thermal Neutrons on Nucleus II

NUCLEAR STRUCTURE 68Zn, 69Zn, 67Zn, 110Ag, 108Ag, 24Na, 125Te, 124Te, 128I, 60Co; measured not abstracted; deduced nuclear properties.

doi: 10.1007/BF01557111
Citations: PlumX Metrics


1960UR02      Czechoslov.J.Phys. 10B, 275 (1960)

J.Urbanec, J.Kajfosz, J.Kopecky

The Radiative Capture of a Neutron on Sc, Fe, Cu, Mo, Cd and La Nuclei

NUCLEAR STRUCTURE 46Sc, 57Fe, 66Cu, 64Cu, 96Mo, 140La, 114Cd; measured not abstracted; deduced nuclear properties.


1959UR02      Czechoslov.J.Phys. 9, 544 (1959)

J.Urbanec, J.Kopecky, J.Kajfosz

Radiative Capture of Slow Neutrons on Atomic Nuclei


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