References quoted in the XUNDL dataset: 17C 208PB(18C,17C):XUNDL-9

2 references found.

Clicking on a keynumber will list datasets that reference the given article.


2013UE01

Phys.Rev. C 87, 034316 (2013)

H.Ueno, H.Miyatake, Y.Yamamoto, S.Tanimoto, T.Shimoda, N.Aoi, K.Asahi, E.Ideguchi, M.Ishihara, H.Izumi, T.Kishida, T.Kubo, S.Mitsuoka, Y.Mizoi, M.Notani, H.Ogawa, A.Ozawa, M.Sasaki, T.Shirakura, N.Takahashi, K.Yoneda

β-delayed neutron and γ-ray spectroscopy of 17C utilizing spin-polarized 17B

RADIOACTIVITY 17B(β-), (β-n), (β-2n)[spin polarized 17B beam from β-NMR technique in 93Nb(22Ne, X), E=110 MeV/nucleon reaction]; 16,17C, 17N(β-), (β-n)[from 17B decay]; 15C, 16N(β-)[from 17B decay products]; measured Eγ, Iγ, Eβ, Iβ, E(n) by TOF, I(n), β-NMR, βγ-, βγγ-, βnγ-coin at RIKEN facility. 17C; deduced levels, J, π, widths, P(0n), P(1n), P(2n), B(GT). 15,16C, 15,17N; deduced levels. No γ rays observed for delayed-3n and delayed-4n channels of 17B decay, thus P(3n), P(4n) not determined. Comparison with shell-model calculations.

doi: 10.1103/PhysRevC.87.034316


2017HE04

Phys.Rev. C 95, 014613 (2017)

M.Heine, for the R3B Collaboration

Determination of the neutron-capture rate of 17C for r-process nucleosynthesis

NUCLEAR REACTIONS Pb(18C, X), E=425 MeV/nucleon, [secondary 18C beam from 9Be(40Ar, X), E=490 MeV/nucleon primary reaction, and using FRS fragment separator at GSI]; measured mass distribution of carbon fragments after 18C breakup in coincidence with neutrons in the LAND detector, reaction products by R3B-LAND setup at GSI, Eγ, Iγ using Crystal Ball array. 17C; deduced levels, J, π, σ, spectroscopic factors for one-neutron removal in 18C from Coulomb dissociation, exclusive differential Coulomb dissociation cross sections with respect to 17C-n relative energy. Comparison with theoretical calculations using shell model in the psd model space with WBP interaction. 17C(n, γ), T9=0.01-10; deduced nuclear reaction rates, abundance as a function of mass number with updated 17C capture rates. Comparison with Hauser-Feshbach, and direct capture model theoretical calculations.

doi: 10.1103/PhysRevC.95.014613