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        <identifier>oai:meral.edu.mm:recid/838</identifier>
        <datestamp>2021-12-13T07:58:38Z</datestamp>
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          <dc:title>Structure Analysis of Light [I] - Hypernuclei</dc:title>
          <dc:creator>Phyo Wai Wai Lwin</dc:creator>
          <dc:creator>Aye Aye Min</dc:creator>
          <dc:creator>Khin Swe Myint</dc:creator>
          <dc:description>In this research work, the binding energies of light ; hypernuclei namely ; -&#13; 12C, ; -&#13; 14N and ; -&#13; 16O have been calculated within the frame work of ; single-particle model by solving&#13; nonrelativistic Schrödinger equation. In this calculation, the Gaussian basis wave function and&#13; phenomenological Woods-Saxon central potential including coulomb interaction are used. By&#13; using the strength of Woods-Saxon potential -14.0 MeV, the calculated bound state energy of ; -&#13; 14N is 3.07 MeV over binding than the recent experimental results, 4.38 r 0.25 MeV which&#13; is observed from E373 experiment, KEK, Japan. Therefore, the binding energies of ; -&#13; 14N&#13; have investigated by varying potential strength. At the potential depth -8.5 MeV, the calculated&#13; binding energy of ; -&#13; 14N is in good agreement with the experimental result. Therefore, this&#13; potential strength is applied to study the structure analysis of other two light ; hypernuclei.&#13; The observed binding energies of 1S state for ; -&#13; 12C and ; -&#13; 16O are 3.64 MeV and 5.09 MeV&#13; respectively. In addition, the root-mean-square radii of these light ; hypernuclei have also&#13; investigated. The calculated results are 3.24 fm for ; -&#13; 12C, 3.11 fm for ; -&#13; 14N and 3.02 fm&#13; for ; -&#13; 16O respectively. It is also found that 3D and 4F states are only pure ; - atomic states&#13; while the other S and P states are Coulomb-assisted nuclear ; -bound states called hybrid&#13; states.</dc:description>
          <dc:date>2016</dc:date>
          <dc:identifier>http://hdl.handle.net/20.500.12678/0000000838</dc:identifier>
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