In collaboration with:
✓
Stefano Gandolfi, LANL
✓
Alessandro Lovato, ANL
✓
Francesco Pederiva, Trento
✓
? looking for the pieces of the puzzle n Diego Lonardoni FRIB - - PowerPoint PPT Presentation
From hypernuclei to neutron stars: p ? looking for the pieces of the puzzle n Diego Lonardoni FRIB Theory Fellow In collaboration with: Stefano Gandolfi, LANL Alessandro Lovato, ANL Francesco Pederiva, Trento
✓
✓
✓
✓
12 km
ρ0
12 km
ρ0
Y ' 2 3ρ0
12 km
ρ0
Y ' 2 3ρ0
12 km
ρ0
Y ' 2 3ρ0
✓ Indication for the appearance of hyperons
✓ Apparent inconsistency between theoretical
12 km
ρ0
Y ' 2 3ρ0
✓ Indication for the appearance of hyperons
✓ Apparent inconsistency between theoretical
✓
i
i
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✓
i
i
i<j
i<j<k
λ
λ
λ,i
λ,i<j
✓
✓
i
i
i<j
i<j<k
λ
λ
λ,i
λ,i<j
✓
✓
i
i
i<j
i<j<k
λ
λ
λ,i
λ,i<j
ΛZ)
BΛ [MeV] A-2/3
s
emulsion (K-,π-) (π+,K+) (e,e’K+) 0.0 5.0 10.0 15.0 20.0 25.0 30.0 35.0 40.0 45.0 0.0 0.1 0.2 0.3 0.4 0.5
BΛ [MeV] A-2/3
s
emulsion (K-,π-) (π+,K+) (e,e’K+) ΛN 0.0 5.0 10.0 15.0 20.0 25.0 30.0 35.0 40.0 45.0 0.0 0.1 0.2 0.3 0.4 0.5
17 ΛO 16 ΛO 5 ΛHe 4 ΛH, 4 ΛHe
3 ΛH
3 ΛH
91 ΛZr 5 ΛHe 49 ΛCa 4 ΛH, 4 ΛHe
3 ΛH
41 ΛCa 17 ΛO 16 ΛO
BΛ [MeV] A-2/3
s
emulsion (K-,π-) (π+,K+) (e,e’K+) ΛN ΛN + ΛNN (I) 0.0 5.0 10.0 15.0 20.0 25.0 30.0 35.0 40.0 45.0 0.0 0.1 0.2 0.3 0.4 0.5
1773-1777 (1995)
(I)
3 ΛH
91 ΛZr 5 ΛHe 49 ΛCa 4 ΛH, 4 ΛHe
3 ΛH
41 ΛCa 17 ΛO 16 ΛO
BΛ [MeV] A-2/3
s
emulsion (K-,π-) (π+,K+) (e,e’K+) ΛN ΛN + ΛNN (I) 0.0 5.0 10.0 15.0 20.0 25.0 30.0 35.0 40.0 45.0 0.0 0.1 0.2 0.3 0.4 0.5
1773-1777 (1995)
(I)
BΛ [MeV] A-2/3
s
emulsion (K-,π-) (π+,K+) (e,e’K+) ΛN ΛN + ΛNN (I) ΛN + ΛNN (II) 0.0 5.0 10.0 15.0 20.0 25.0 30.0 35.0 40.0 45.0 0.0 0.1 0.2 0.3 0.4 0.5
91 ΛZr 5 ΛHe 49 ΛCa 4 ΛH, 4 ΛHe
3 ΛH
41 ΛCa 17 ΛO 16 ΛO
BΛ [MeV] A-2/3
s
emulsion (K-,π-) (π+,K+) (e,e’K+) ΛN ΛN + ΛNN (I) ΛN + ΛNN (II) 0.0 5.0 10.0 15.0 20.0 25.0 30.0 35.0 40.0 45.0 0.0 0.1 0.2 0.3 0.4 0.5
91 ΛZr 5 ΛHe 49 ΛCa 4 ΛH, 4 ΛHe
3 ΛH
41 ΛCa 17 ΛO 16 ΛO
BΛ [MeV] A-2/3
208 89 40 28 16 12 9 7 6 5 4 3 s p d f g
emulsion (K-,π-) (π+,K+) (e,e’K+) AFDMC 0.0 5.0 10.0 15.0 20.0 25.0 30.0 0.0 0.1 0.2 0.3 0.4 0.5
BΛ [MeV] A-2/3
208 89 40 28 16 12 9 7 6 5 4 3 s p d f g
emulsion (K-,π-) (π+,K+) (e,e’K+) AFDMC 0.0 5.0 10.0 15.0 20.0 25.0 30.0 0.0 0.1 0.2 0.3 0.4 0.5
BΛ [MeV] A-2/3
208 89 40 28 16 12 9 7 6 5 4 3 s p d f g
emulsion (K-,π-) (π+,K+) (e,e’K+) AFDMC 0.0 5.0 10.0 15.0 20.0 25.0 30.0 0.0 0.1 0.2 0.3 0.4 0.5
BΛ [MeV] A-2/3
208 89 40 28 16 12 9 7 6 5 4 3 s p d f g
emulsion (K-,π-) (π+,K+) (e,e’K+) AFDMC 0.0 5.0 10.0 15.0 20.0 25.0 30.0 0.0 0.1 0.2 0.3 0.4 0.5
BΛ [MeV] A-2/3
208 89 40 28 16 12 9 7 6 5 4 3 s p d f g
emulsion (K-,π-) (π+,K+) (e,e’K+) AFDMC 0.0 5.0 10.0 15.0 20.0 25.0 30.0 0.0 0.1 0.2 0.3 0.4 0.5
0.54(4) MeV
BΛ [MeV] A-2/3
208 89 40 28 16 12 9 7 6 5 4 3 s p d f g
emulsion (K-,π-) (π+,K+) (e,e’K+) AFDMC 0.0 5.0 10.0 15.0 20.0 25.0 30.0 0.0 0.1 0.2 0.3 0.4 0.5
0.54(4) MeV
2.45(1)M 0.66(2)M M [M0] R [km] PNM N N + NN (I) 0.0 0.4 0.8 1.2 1.6 2.0 2.4 2.8 10 11 12 13 14 15 16 PSR J1614-2230 PSR J0348+0432 1.36(5)M
ρth
Λ = 0.24(1) fm−3
ρth
Λ = 0.34(1) fm−3
2.45(1)M M [M0] R [km] PNM N N + NN (I) N + NN (II) 0.0 0.4 0.8 1.2 1.6 2.0 2.4 2.8 10 11 12 13 14 15 16 PSR J1614-2230 PSR J0348+0432 1.36(5)M 2.09(1)M
0.66(2)M ρth
Λ = 0.24(1) fm−3
ρth
Λ = 0.34(1) fm−3
ρth
Λ > 0.56 fm−3
2.45(1)M M [M0] R [km] PNM N N + NN (I) N + NN (II) 0.0 0.4 0.8 1.2 1.6 2.0 2.4 2.8 10 11 12 13 14 15 16 PSR J1614-2230 PSR J0348+0432 1.36(5)M 2.09(1)M
0.66(2)M
ρth
Λ = 0.24(1) fm−3
ρth
Λ = 0.34(1) fm−3
ρth
Λ > 0.56 fm−3
BΛ [MeV] A-2/3
208 89 40 28 16 12 9 7 6 5 4 3 s
experiments CT = 1.0 CT = 1.5 CT = 0.0 CT = -1.0 0.0 5.0 10.0 15.0 20.0 25.0 30.0 0.0 0.1 0.2 0.3 0.4 0.5
BΛ [MeV] A-2/3
208 89 40 28 16 12 9 7 6 5 4 3 s
experiments CT = 1.0 CT = 1.5 CT = 0.0 CT = -1.0 0.0 5.0 10.0 15.0 20.0 25.0 30.0 0.0 0.1 0.2 0.3 0.4 0.5
✓ The observation of massive neutron stars reopened the debate about the
✓ We developed a quantum Monte Carlo algorithm to study finite and infinite
✓ Need of more constraints on hypernuclear interactions before drawing
X-ray/optical binaries Double– neutron star binaries White dwarf– neutron star binaries Main sequence– neutron star binaries Black widow pulsar Hulse–Taylor binary In M15 Double pulsar In NGC 6544 In NGC 6539 In Ter 5 2.95 ms pulsar In 47 Tuc In NGC 1851 In M5 In NGC 6440 In NGC 6441 In NGC 6752 4U1700-37 (32) Vela X-1 (33) Cyg X-2 (34) 4U 1538-52 (33) SMC X-1 (33) LMC X-4 (33) Cen X-3 (33) Her X-1 (33) XTE J2123-058 (35) 2S 0921-630 (36) 4U 1822-371 (37) EXO 1722-363 (38) B1957+20 (39) IGR J18027-2016 (40) J1829+2456 (42) J1829+2456 comp. (42) J1811-1736 (43) J1811-1736 comp. (43) J1906+0746 (44) J1906+0746 comp. (44) J1518+4904 (27) J1518+4904 comp. (27) B1534+12 (45) B1534+12 comp. (45) B1913+16 (46) B1913+16 comp. (46) B2127+11C (47) B2127+11C comp. (47) J0737-3039A (48) J0737-3039B (48) J1756-2251 (49) J1756-2251 comp. (49) J1807-2500B (29) J1807-2500B comp. ? (29) B2303+46 (31) J1012+5307 (50) J1713+0747 (51) B1802-07 (31) B1855+09 (52) J0621+1002 (53) J0751+1807 (53) J0437-4715 (54) J1141-6545 (55) J1748-2446I (56) J1748-2446J (56) J1909-3744 (57) J0024-7204H (56) B1802-2124 (58) J051-4002A (56) B1516+02B (59) J1748-2021B (60) J1750-37A (60) J1738+0333 (61) B1911-5958A (62) J1614-2230 (63) J2043+1711 (64) J1910+1256 (28) J2106+1948 (28) J1853+1303 (28) J1045-4509 (31) J1804-2718 (31) J2019+2425 (65) J0045-7319 (31) J1903+0327 (66) 0.0 0.5 1.0 1.5 2.0 2.5 3.0
Neutron star mass (M◉)
Nature 467, 1081 (2010)
Science 340, 1233232 (2013)
Science 320, 1309 (2008)
12 km
ρ0
✓ Approximated theoretical
✓ Interactions poorly known
Y ' 2 3ρ0
R ∼ 12 km M ∼ 1.4 M
Neutron Stars 1, Springer 2007 ρ0 = 0.16 fm−3
ρ
ρ0 = 0.16 fm−3
940 MeV
1116 MeV
1200 MeV 1300 MeV
p n
3
F
ρ0
12 km
R ∼ 12 km M ∼ 1.4 M
Λ
ρ0
12 km
R ∼ 12 km M ∼ 1.4 M
F
Λ
Λ
ρ0
12 km
✓ Theoretical indication for hyperons in
✓ Magnitude of the softening: strongly
✓ Observation of massive NS: stiff EOS
✓ Interactions poorly known
✓ Non trivial many-body problem: very
(2013) 24–58
October 10-14, 2006 Mainz, Germany edited by
N Z |S|
1968 1968 1972
Energy (MeV)
α+n α+2n α+d
6He+n
α+t
6He+2n 7Li+n
2α
8Li+n
2α+n
8He+2n 9Be+n 6Li+α
3α
AV18 UIX IL7 Exp
2.2 1+ 2.2 1+ 2.2 1+ 2.2 1+ 2.2 1+ 2.2 1+ 2.2 1+ 2.2 1+1+
2H
7.6 1/2+ 8.5 1/2+ 8.5 1/2+ 8.5 1/2+ 7.6 1/2+ 8.5 1/2+ 8.5 1/2+ 8.5 1/2+1/2+
3H
24.1 0+ 28.4 0+ 28.4 0+ 28.3 0+ 24.1 0+ 28.4 0+ 28.4 0+ 28.3 0+0+
4He
22.5 3/2− 21.9 1/2− 26.9 3/2− 25.8 1/2− 27.5 3/2− 26.2 1/2− 22.5 3/2− 21.9 1/2− 26.9 3/2− 25.8 1/2− 27.5 3/2− 26.2 1/2−3/2− 1/2−
5He
23.8 0+ 21.9 2+ 20.4 2+ 19.6 1+ 19.0 0+ 28.0 0+ 26.1 2+ 23.9 1+ 29.2 0+ 26.9 2+ 29.3 0+ 27.5 2+ 23.7 2+ 23.7 0+ 23.8 0+ 21.9 2+ 20.4 2+ 19.6 1+ 19.0 0+ 28.0 0+ 26.1 2+ 23.9 1+ 29.2 0+ 26.9 2+ 29.3 0+ 27.5 2+ 23.7 2+ 23.7 0+1+ 0+ 2+ 2+ 0+
6He
26.9 1+ 24.1 3+ 22.8 2+ 22.0 1+ 18.8 1+ 31.3 1+ 28.5 3+ 27.3 2+ 26.2 1+ 31.8 1+ 29.5 3+ 27.6 2+ 26.4 1+ 32.0 1+ 29.8 3+ 27.7 2+ 26.3 1+ 26.9 1+ 24.1 3+ 22.8 2+ 22.0 1+ 18.8 1+ 31.3 1+ 28.5 3+ 27.3 2+ 26.2 1+ 31.8 1+ 29.5 3+ 27.6 2+ 26.4 1+ 32.0 1+ 29.8 3+ 27.7 2+ 26.3 1+1+ 1+ 3+ 2+ 1+
6Li
21.9 3/2− 20.7 1/2− 19.4 5/2− 26.3 3/2− 25.2 1/2− 23.9 5/2− 28.6 3/2− 26.7 1/2− 25.3 5/2− 28.8 3/2− 25.9 5/2− 25.9 (5/2)− 21.9 3/2− 20.7 1/2− 19.4 5/2− 26.3 3/2− 25.2 1/2− 23.9 5/2− 28.6 3/2− 26.7 1/2− 25.3 5/2− 28.8 3/2− 25.9 5/2− 25.9 (5/2)−1/2− 3/2− 5/2− (5/2)−
7He
32.0 3/2− 32.2 1/2− 26.8 7/2− 26.4 5/2− 24.5 5/2− 23.0 7/2− 24.4 3/2− 23.8 1/2− 37.5 3/2− 37.6 1/2− 32.2 7/2− 31.1 5/2− 29.7 5/2− 28.1 7/2− 29.1 3/2− 27.0 5/2− 24.4 5/2− 39.1 3/2− 39.0 1/2− 34.9 7/2− 32.5 5/2− 31.3 5/2− 29.0 7/2− 39.2 3/2− 38.8 1/2− 34.6 7/2− 32.6 5/2− 31.8 5/2− 29.7 7/2− 30.5 3/2− 30.1 1/2− 32.0 3/2− 32.2 1/2− 26.8 7/2− 26.4 5/2− 24.5 5/2− 23.0 7/2− 24.4 3/2− 23.8 1/2− 37.5 3/2− 37.6 1/2− 32.2 7/2− 31.1 5/2− 29.7 5/2− 28.1 7/2− 29.1 3/2− 27.0 5/2− 24.4 5/2− 39.1 3/2− 39.0 1/2− 34.9 7/2− 32.5 5/2− 31.3 5/2− 29.0 7/2− 39.2 3/2− 38.8 1/2− 34.6 7/2− 32.6 5/2− 31.8 5/2− 29.7 7/2− 30.5 3/2− 30.1 1/2−5/2− 5/2− 3/2− 1/2− 7/2− 5/2− 5/2− 7/2− 3/2− 1/2−
7Li
23.0 0+ 20.4 2+ 18.8 1+ 27.7 0+ 25.0 2+ 23.3 1+ 31.1 0+ 26.4 2+ 31.4 0+ 28.3 2+ 23.0 0+ 20.4 2+ 18.8 1+ 27.7 0+ 25.0 2+ 23.3 1+ 31.1 0+ 26.4 2+ 31.4 0+ 28.3 2+1+ 0+ 2+
8He
32.7 2+ 32.1 1+ 31.5 0+ 30.1 3+ 29.7 2+ 31.0 1+ 27.1 4+ 26.3 3+ 29.1 1+ 28.7 2+ 38.8 2+ 37.8 1+ 36.9 0+ 35.4 3+ 35.2 1+ 32.3 4+ 41.2 2+ 40.5 1+ 38.1 0+ 38.2 3+ 36.9 2+ 37.8 1+ 34.8 4+ 35.9 2+ 41.3 2+ 40.3 1+ 35.9 0+ 39.0 3+ 38.1 1+ 34.8 4+ 35.2 3+ 35.9 1+ 32.7 2+ 32.1 1+ 31.5 0+ 30.1 3+ 29.7 2+ 31.0 1+ 27.1 4+ 26.3 3+ 29.1 1+ 28.7 2+ 38.8 2+ 37.8 1+ 36.9 0+ 35.4 3+ 35.2 1+ 32.3 4+ 41.2 2+ 40.5 1+ 38.1 0+ 38.2 3+ 36.9 2+ 37.8 1+ 34.8 4+ 35.9 2+ 41.3 2+ 40.3 1+ 35.9 0+ 39.0 3+ 38.1 1+ 34.8 4+ 35.2 3+ 35.9 1+2+ 2+ 2+ 1+ 0+ 3+ 1+ 4+ 3+ 1+
8Li
46.3 0+ 43.7 2+ 36.2 4+ 31.0 2+ 30.8 1+ 29.7 3+ 29.1 2+ 55.2 0+ 52.1 2+ 44.2 4+ 36.4 2+ 37.0 1+ 35.2 3+ 56.5 0+ 53.5 2+ 45.3 4+ 39.9 2+ 38.5 1+ 36.8 3+ 35.9 4+ 35.4 0+ 36.6 1+ 56.5 0+ 53.4 2+ 45.1 4+ 39.6 2+ 38.3 1+ 37.3 3+ 36.6 4+ 36.3 0+ 36.4 2+ 46.3 0+ 43.7 2+ 36.2 4+ 31.0 2+ 30.8 1+ 29.7 3+ 29.1 2+ 55.2 0+ 52.1 2+ 44.2 4+ 36.4 2+ 37.0 1+ 35.2 3+ 56.5 0+ 53.5 2+ 45.3 4+ 39.9 2+ 38.5 1+ 36.8 3+ 35.9 4+ 35.4 0+ 36.6 1+ 56.5 0+ 53.4 2+ 45.1 4+ 39.6 2+ 38.3 1+ 37.3 3+ 36.6 4+ 36.3 0+ 36.4 2+1+ 0+ 2+ 4+ 2+ 1+ 3+ 4+ 0+ 2+
8Be
33.7 3/2− 34.0 1/2− 32.1 5/2− 29.7 7/2− 40.9 3/2− 39.4 1/2− 37.9 5/2− 35.2 7/2− 37.3 3/2− 45.5 3/2− 43.4 1/2− 40.1 5/2− 45.3 3/2− 42.7 1/2− 41.0 5/2− 38.9 7/2− 33.7 3/2− 34.0 1/2− 32.1 5/2− 29.7 7/2− 40.9 3/2− 39.4 1/2− 37.9 5/2− 35.2 7/2− 37.3 3/2− 45.5 3/2− 43.4 1/2− 40.1 5/2− 45.3 3/2− 42.7 1/2− 41.0 5/2− 38.9 7/2−3/2− 3/2− 1/2− 5/2− 7/2−
9Li
45.7 3/2− 44.7 1/2+ 45.5 5/2− 45.0 1/2− 42.8 5/2+ 40.3 7/2− 36.7 9/2− 55.1 3/2− 51.3 5/2− 50.9 1/2− 57.4 3/2− 55.9 1/2+ 55.1 5/2− 55.4 1/2− 54.4 5/2+ 53.2 3/2+ 51.0 7/2− 53.4 3/2− 46.5 7/2− 41.2 5/2+ 39.3 7/2+ 58.2 3/2− 56.5 1/2+ 55.7 5/2− 55.4 1/2− 55.1 5/2+ 53.5 3/2+ 51.8 7/2− 52.6 3/2− 46.9 7/2− 41.5 5/2+ 40.7 7/2+ 45.7 3/2− 44.7 1/2+ 45.5 5/2− 45.0 1/2− 42.8 5/2+ 40.3 7/2− 36.7 9/2− 55.1 3/2− 51.3 5/2− 50.9 1/2− 57.4 3/2− 55.9 1/2+ 55.1 5/2− 55.4 1/2− 54.4 5/2+ 53.2 3/2+ 51.0 7/2− 53.4 3/2− 46.5 7/2− 41.2 5/2+ 39.3 7/2+ 58.2 3/2− 56.5 1/2+ 55.7 5/2− 55.4 1/2− 55.1 5/2+ 53.5 3/2+ 51.8 7/2− 52.6 3/2− 46.9 7/2− 41.5 5/2+ 40.7 7/2+9/2− 3/2− 1/2+ 5/2− 1/2− 5/2+ 3/2+ 7/2− 3/2− 7/2− 5/2+ 7/2+
9Be
19.8 0+ 26.6 0+ 30.3 0+ 19.8 0+ 26.6 0+ 30.3 0+0+
10He
50.0 0+ 47.2 2+ 45.0 1− 47.0 2+ 43.0 3+ 59.5 0+ 56.0 2+ 55.8 2+ 64.3 0+ 60.5 2+ 58.8 2+ 57.3 1+ 65.0 0+ 61.6 2+ 59.0 1− 59.0 2+ 58.8 0+ 57.4 3,2+ 50.0 0+ 47.2 2+ 45.0 1− 47.0 2+ 43.0 3+ 59.5 0+ 56.0 2+ 55.8 2+ 64.3 0+ 60.5 2+ 58.8 2+ 57.3 1+ 65.0 0+ 61.6 2+ 59.0 1− 59.0 2+ 58.8 0+ 57.4 3,2+3+ 1+ 0+ 2+ 1− 2+ 0+ 3,2+
10Be
48.6 3+ 51.6 1+ 47.2 2+ 43.5 2− 45.0 4+ 49.2 1+ 47.1 3+ 46.1 1+ 46.6 2+ 59.0 3+ 60.3 1+ 64.7 3+ 63.4 1+ 61.3 2+ 58.3 4+ 62.3 1+ 58.5 3+ 59.2 2+ 55.6 3+ 64.8 3+ 64.0 1+ 61.2 2+ 59.6 2− 58.7 4+ 62.6 1+ 60.0 3+ 59.6 1+ 58.8 2+ 56.1 3+ 48.6 3+ 51.6 1+ 47.2 2+ 43.5 2− 45.0 4+ 49.2 1+ 47.1 3+ 46.1 1+ 46.6 2+ 59.0 3+ 60.3 1+ 64.7 3+ 63.4 1+ 61.3 2+ 58.3 4+ 62.3 1+ 58.5 3+ 59.2 2+ 55.6 3+ 64.8 3+ 64.0 1+ 61.2 2+ 59.6 2− 58.7 4+ 62.6 1+ 60.0 3+ 59.6 1+ 58.8 2+ 56.1 3+3+ 1+ 2+ 2− 4+ 1+ 3+ 1+ 2+ 3+
10B
48.6 3+ 51.6 1+ 47.2 2+ 43.5 2− 45.0 4+ 49.2 1+ 47.1 3+ 46.1 1+ 46.6 2+ 59.0 3+ 60.3 1+ 64.7 3+ 63.4 1+ 61.3 2+ 58.3 4+ 62.3 1+ 58.5 3+ 59.2 2+ 55.6 3+ 64.8 3+ 64.0 1+ 61.2 2+ 59.6 2− 58.7 4+ 62.6 1+ 60.0 3+ 59.6 1+ 58.8 2+ 56.1 3+ 48.6 3+ 51.6 1+ 47.2 2+ 43.5 2− 45.0 4+ 49.2 1+ 47.1 3+ 46.1 1+ 46.6 2+ 59.0 3+ 60.3 1+ 64.7 3+ 63.4 1+ 61.3 2+ 58.3 4+ 62.3 1+ 58.5 3+ 59.2 2+ 55.6 3+ 64.8 3+ 64.0 1+ 61.2 2+ 59.6 2− 58.7 4+ 62.6 1+ 60.0 3+ 59.6 1+ 58.8 2+ 56.1 3+3+ 1+ 2+ 2− 4+ 1+ 3+ 1+ 2+
72.8 0+ 93.3 0+ 82.9 0+ 92.2 0+ 84.5 0+ 72.8 0+ 93.3 0+ 82.9 0+ 92.2 0+ 84.5 0+0+ 0+
12C
α+n α+2n α+d
6He+n
α+t
6He+2n 7Li+n
2α
8Li+n
2α+n
8He+2n 9Be+n 6Li+α
3α
Argonne v18 without & with Vijk GFMC Calculations
23 August 2012
The main figure compares computed and experimental energies of nuclear states. The computations were made using just the Argonne v18 (AV18) NN potential and AV18 plus the Urbana-IX or the Illinois-2 NNN potentials.
2n
1/2+3H
0+4n
0+4He
1/2+5H
3/2−5He
0+6n
0+6He
1+6Li
Argonne v18 With Illinois-2 + modifications
There is an experimental claim of a bound tetra- neutron (4n). Our Ham- iltonian predicts at most a (likely very broad) reson- ance at +2 MeV. The figure shows attempts to produce a 4n with nega- tive energy by changing the Hamiltonian. Modi- fication of the 1S0 poten- tial gives a bound dineutron and signifi- cantly overbinds otherwith Argonne v18 + Illinois-2
Neutron drops are systems of interacting nucleons bound in an artificial external well which may be thought of as representing the protons of a real nucleus. By includingEnergy (MeV)
α+n α+2n α+d
6He+n
α+t
6He+2n 7Li+n
2α
8Li+n
2α+n
8He+2n 9Be+n 6Li+α
3α
AV18 UIX IL7 Exp
2.2 1+ 2.2 1+ 2.2 1+ 2.2 1+ 2.2 1+ 2.2 1+ 2.2 1+ 2.2 1+1+
2H
7.6 1/2+ 8.5 1/2+ 8.5 1/2+ 8.5 1/2+ 7.6 1/2+ 8.5 1/2+ 8.5 1/2+ 8.5 1/2+1/2+
3H
24.1 0+ 28.4 0+ 28.4 0+ 28.3 0+ 24.1 0+ 28.4 0+ 28.4 0+ 28.3 0+0+
4He
22.5 3/2− 21.9 1/2− 26.9 3/2− 25.8 1/2− 27.5 3/2− 26.2 1/2− 22.5 3/2− 21.9 1/2− 26.9 3/2− 25.8 1/2− 27.5 3/2− 26.2 1/2−3/2− 1/2−
5He
23.8 0+ 21.9 2+ 20.4 2+ 19.6 1+ 19.0 0+ 28.0 0+ 26.1 2+ 23.9 1+ 29.2 0+ 26.9 2+ 29.3 0+ 27.5 2+ 23.7 2+ 23.7 0+ 23.8 0+ 21.9 2+ 20.4 2+ 19.6 1+ 19.0 0+ 28.0 0+ 26.1 2+ 23.9 1+ 29.2 0+ 26.9 2+ 29.3 0+ 27.5 2+ 23.7 2+ 23.7 0+1+ 0+ 2+ 2+ 0+
6He
26.9 1+ 24.1 3+ 22.8 2+ 22.0 1+ 18.8 1+ 31.3 1+ 28.5 3+ 27.3 2+ 26.2 1+ 31.8 1+ 29.5 3+ 27.6 2+ 26.4 1+ 32.0 1+ 29.8 3+ 27.7 2+ 26.3 1+ 26.9 1+ 24.1 3+ 22.8 2+ 22.0 1+ 18.8 1+ 31.3 1+ 28.5 3+ 27.3 2+ 26.2 1+ 31.8 1+ 29.5 3+ 27.6 2+ 26.4 1+ 32.0 1+ 29.8 3+ 27.7 2+ 26.3 1+1+ 1+ 3+ 2+ 1+
6Li
21.9 3/2− 20.7 1/2− 19.4 5/2− 26.3 3/2− 25.2 1/2− 23.9 5/2− 28.6 3/2− 26.7 1/2− 25.3 5/2− 28.8 3/2− 25.9 5/2− 25.9 (5/2)− 21.9 3/2− 20.7 1/2− 19.4 5/2− 26.3 3/2− 25.2 1/2− 23.9 5/2− 28.6 3/2− 26.7 1/2− 25.3 5/2− 28.8 3/2− 25.9 5/2− 25.9 (5/2)−1/2− 3/2− 5/2− (5/2)−
7He
32.0 3/2− 32.2 1/2− 26.8 7/2− 26.4 5/2− 24.5 5/2− 23.0 7/2− 24.4 3/2− 23.8 1/2− 37.5 3/2− 37.6 1/2− 32.2 7/2− 31.1 5/2− 29.7 5/2− 28.1 7/2− 29.1 3/2− 27.0 5/2− 24.4 5/2− 39.1 3/2− 39.0 1/2− 34.9 7/2− 32.5 5/2− 31.3 5/2− 29.0 7/2− 39.2 3/2− 38.8 1/2− 34.6 7/2− 32.6 5/2− 31.8 5/2− 29.7 7/2− 30.5 3/2− 30.1 1/2− 32.0 3/2− 32.2 1/2− 26.8 7/2− 26.4 5/2− 24.5 5/2− 23.0 7/2− 24.4 3/2− 23.8 1/2− 37.5 3/2− 37.6 1/2− 32.2 7/2− 31.1 5/2− 29.7 5/2− 28.1 7/2− 29.1 3/2− 27.0 5/2− 24.4 5/2− 39.1 3/2− 39.0 1/2− 34.9 7/2− 32.5 5/2− 31.3 5/2− 29.0 7/2− 39.2 3/2− 38.8 1/2− 34.6 7/2− 32.6 5/2− 31.8 5/2− 29.7 7/2− 30.5 3/2− 30.1 1/2−5/2− 5/2− 3/2− 1/2− 7/2− 5/2− 5/2− 7/2− 3/2− 1/2−
7Li
23.0 0+ 20.4 2+ 18.8 1+ 27.7 0+ 25.0 2+ 23.3 1+ 31.1 0+ 26.4 2+ 31.4 0+ 28.3 2+ 23.0 0+ 20.4 2+ 18.8 1+ 27.7 0+ 25.0 2+ 23.3 1+ 31.1 0+ 26.4 2+ 31.4 0+ 28.3 2+1+ 0+ 2+
8He
32.7 2+ 32.1 1+ 31.5 0+ 30.1 3+ 29.7 2+ 31.0 1+ 27.1 4+ 26.3 3+ 29.1 1+ 28.7 2+ 38.8 2+ 37.8 1+ 36.9 0+ 35.4 3+ 35.2 1+ 32.3 4+ 41.2 2+ 40.5 1+ 38.1 0+ 38.2 3+ 36.9 2+ 37.8 1+ 34.8 4+ 35.9 2+ 41.3 2+ 40.3 1+ 35.9 0+ 39.0 3+ 38.1 1+ 34.8 4+ 35.2 3+ 35.9 1+ 32.7 2+ 32.1 1+ 31.5 0+ 30.1 3+ 29.7 2+ 31.0 1+ 27.1 4+ 26.3 3+ 29.1 1+ 28.7 2+ 38.8 2+ 37.8 1+ 36.9 0+ 35.4 3+ 35.2 1+ 32.3 4+ 41.2 2+ 40.5 1+ 38.1 0+ 38.2 3+ 36.9 2+ 37.8 1+ 34.8 4+ 35.9 2+ 41.3 2+ 40.3 1+ 35.9 0+ 39.0 3+ 38.1 1+ 34.8 4+ 35.2 3+ 35.9 1+2+ 2+ 2+ 1+ 0+ 3+ 1+ 4+ 3+ 1+
8Li
46.3 0+ 43.7 2+ 36.2 4+ 31.0 2+ 30.8 1+ 29.7 3+ 29.1 2+ 55.2 0+ 52.1 2+ 44.2 4+ 36.4 2+ 37.0 1+ 35.2 3+ 56.5 0+ 53.5 2+ 45.3 4+ 39.9 2+ 38.5 1+ 36.8 3+ 35.9 4+ 35.4 0+ 36.6 1+ 56.5 0+ 53.4 2+ 45.1 4+ 39.6 2+ 38.3 1+ 37.3 3+ 36.6 4+ 36.3 0+ 36.4 2+ 46.3 0+ 43.7 2+ 36.2 4+ 31.0 2+ 30.8 1+ 29.7 3+ 29.1 2+ 55.2 0+ 52.1 2+ 44.2 4+ 36.4 2+ 37.0 1+ 35.2 3+ 56.5 0+ 53.5 2+ 45.3 4+ 39.9 2+ 38.5 1+ 36.8 3+ 35.9 4+ 35.4 0+ 36.6 1+ 56.5 0+ 53.4 2+ 45.1 4+ 39.6 2+ 38.3 1+ 37.3 3+ 36.6 4+ 36.3 0+ 36.4 2+1+ 0+ 2+ 4+ 2+ 1+ 3+ 4+ 0+ 2+
8Be
33.7 3/2− 34.0 1/2− 32.1 5/2− 29.7 7/2− 40.9 3/2− 39.4 1/2− 37.9 5/2− 35.2 7/2− 37.3 3/2− 45.5 3/2− 43.4 1/2− 40.1 5/2− 45.3 3/2− 42.7 1/2− 41.0 5/2− 38.9 7/2− 33.7 3/2− 34.0 1/2− 32.1 5/2− 29.7 7/2− 40.9 3/2− 39.4 1/2− 37.9 5/2− 35.2 7/2− 37.3 3/2− 45.5 3/2− 43.4 1/2− 40.1 5/2− 45.3 3/2− 42.7 1/2− 41.0 5/2− 38.9 7/2−3/2− 3/2− 1/2− 5/2− 7/2−
9Li
45.7 3/2− 44.7 1/2+ 45.5 5/2− 45.0 1/2− 42.8 5/2+ 40.3 7/2− 36.7 9/2− 55.1 3/2− 51.3 5/2− 50.9 1/2− 57.4 3/2− 55.9 1/2+ 55.1 5/2− 55.4 1/2− 54.4 5/2+ 53.2 3/2+ 51.0 7/2− 53.4 3/2− 46.5 7/2− 41.2 5/2+ 39.3 7/2+ 58.2 3/2− 56.5 1/2+ 55.7 5/2− 55.4 1/2− 55.1 5/2+ 53.5 3/2+ 51.8 7/2− 52.6 3/2− 46.9 7/2− 41.5 5/2+ 40.7 7/2+ 45.7 3/2− 44.7 1/2+ 45.5 5/2− 45.0 1/2− 42.8 5/2+ 40.3 7/2− 36.7 9/2− 55.1 3/2− 51.3 5/2− 50.9 1/2− 57.4 3/2− 55.9 1/2+ 55.1 5/2− 55.4 1/2− 54.4 5/2+ 53.2 3/2+ 51.0 7/2− 53.4 3/2− 46.5 7/2− 41.2 5/2+ 39.3 7/2+ 58.2 3/2− 56.5 1/2+ 55.7 5/2− 55.4 1/2− 55.1 5/2+ 53.5 3/2+ 51.8 7/2− 52.6 3/2− 46.9 7/2− 41.5 5/2+ 40.7 7/2+9/2− 3/2− 1/2+ 5/2− 1/2− 5/2+ 3/2+ 7/2− 3/2− 7/2− 5/2+ 7/2+
9Be
19.8 0+ 26.6 0+ 30.3 0+ 19.8 0+ 26.6 0+ 30.3 0+0+
10He
50.0 0+ 47.2 2+ 45.0 1− 47.0 2+ 43.0 3+ 59.5 0+ 56.0 2+ 55.8 2+ 64.3 0+ 60.5 2+ 58.8 2+ 57.3 1+ 65.0 0+ 61.6 2+ 59.0 1− 59.0 2+ 58.8 0+ 57.4 3,2+ 50.0 0+ 47.2 2+ 45.0 1− 47.0 2+ 43.0 3+ 59.5 0+ 56.0 2+ 55.8 2+ 64.3 0+ 60.5 2+ 58.8 2+ 57.3 1+ 65.0 0+ 61.6 2+ 59.0 1− 59.0 2+ 58.8 0+ 57.4 3,2+3+ 1+ 0+ 2+ 1− 2+ 0+ 3,2+
10Be
48.6 3+ 51.6 1+ 47.2 2+ 43.5 2− 45.0 4+ 49.2 1+ 47.1 3+ 46.1 1+ 46.6 2+ 59.0 3+ 60.3 1+ 64.7 3+ 63.4 1+ 61.3 2+ 58.3 4+ 62.3 1+ 58.5 3+ 59.2 2+ 55.6 3+ 64.8 3+ 64.0 1+ 61.2 2+ 59.6 2− 58.7 4+ 62.6 1+ 60.0 3+ 59.6 1+ 58.8 2+ 56.1 3+ 48.6 3+ 51.6 1+ 47.2 2+ 43.5 2− 45.0 4+ 49.2 1+ 47.1 3+ 46.1 1+ 46.6 2+ 59.0 3+ 60.3 1+ 64.7 3+ 63.4 1+ 61.3 2+ 58.3 4+ 62.3 1+ 58.5 3+ 59.2 2+ 55.6 3+ 64.8 3+ 64.0 1+ 61.2 2+ 59.6 2− 58.7 4+ 62.6 1+ 60.0 3+ 59.6 1+ 58.8 2+ 56.1 3+3+ 1+ 2+ 2− 4+ 1+ 3+ 1+ 2+ 3+
10B
48.6 3+ 51.6 1+ 47.2 2+ 43.5 2− 45.0 4+ 49.2 1+ 47.1 3+ 46.1 1+ 46.6 2+ 59.0 3+ 60.3 1+ 64.7 3+ 63.4 1+ 61.3 2+ 58.3 4+ 62.3 1+ 58.5 3+ 59.2 2+ 55.6 3+ 64.8 3+ 64.0 1+ 61.2 2+ 59.6 2− 58.7 4+ 62.6 1+ 60.0 3+ 59.6 1+ 58.8 2+ 56.1 3+ 48.6 3+ 51.6 1+ 47.2 2+ 43.5 2− 45.0 4+ 49.2 1+ 47.1 3+ 46.1 1+ 46.6 2+ 59.0 3+ 60.3 1+ 64.7 3+ 63.4 1+ 61.3 2+ 58.3 4+ 62.3 1+ 58.5 3+ 59.2 2+ 55.6 3+ 64.8 3+ 64.0 1+ 61.2 2+ 59.6 2− 58.7 4+ 62.6 1+ 60.0 3+ 59.6 1+ 58.8 2+ 56.1 3+3+ 1+ 2+ 2− 4+ 1+ 3+ 1+ 2+
72.8 0+ 93.3 0+ 82.9 0+ 92.2 0+ 84.5 0+ 72.8 0+ 93.3 0+ 82.9 0+ 92.2 0+ 84.5 0+0+ 0+
12C
α+n α+2n α+d
6He+n
α+t
6He+2n 7Li+n
2α
8Li+n
2α+n
8He+2n 9Be+n 6Li+α
3α
Argonne v18 without & with Vijk GFMC Calculations
23 August 2012
The main figure compares computed and experimental energies of nuclear states. The computations were made using just the Argonne v18 (AV18) NN potential and AV18 plus the Urbana-IX or the Illinois-2 NNN potentials.
2n
1/2+3H
0+4n
0+4He
1/2+5H
3/2−5He
0+6n
0+6He
1+6Li
Argonne v18 With Illinois-2 + modifications
There is an experimental claim of a bound tetra- neutron (4n). Our Ham- iltonian predicts at most a (likely very broad) reson- ance at +2 MeV. The figure shows attempts to produce a 4n with nega- tive energy by changing the Hamiltonian. Modi- fication of the 1S0 poten- tial gives a bound dineutron and signifi- cantly overbinds otherwith Argonne v18 + Illinois-2
Neutron drops are systems of interacting nucleons bound in an artificial external well which may be thought of as representing the protons of a real nucleus. By includingAV18 UIX IL7 Exp
The main figure compares computed and experimental energies of nuclear states. The computations were made using just the Argonne v18 (AV18) NN potential and AV18 plus the Urbana-IX or the Illinois-2 NNN potentials.
9Be+n 6Li+α
50.0 0+ 47.2 2+ 45.0 1− 47.0 2+ 43.0 3+ 59.5 0+ 56.0 2+ 55.8 2+ 64.3 0+ 60.5 2+ 58.8 2+ 57.3 1+ 65.0 0+ 61.6 2+ 59.0 1− 59.0 2+ 58.8 0+ 57.4 3,2+ 50.0 0+ 47.2 2+ 45.0 1− 47.0 2+ 43.0 3+ 59.5 0+ 56.0 2+ 55.8 2+ 64.3 0+ 60.5 2+ 58.8 2+ 57.3 1+ 65.0 0+ 61.6 2+ 59.0 1− 59.0 2+ 58.8 0+ 57.4 3,2+3+ 1+ 0+ 2+ 1− 2+ 0+ 3,2+
3+ 1+ 2+ 2− 4+ 1+ 3+ 1+ 2+ 3+
3+ 1+ 2+ 2− 4+ 1+ 3+ 1+ 2+
9Be+n 6Li+α
E [MeV] ρb [fm-3] AV8’ AV8’ + UIX AV8’ + IL7 5 10 15 20 25 0.04 0.08 0.12 0.16 0.20 0.24
2.45(1)M 1.74(1)M
3BF NNN
(2013) 24–58
October 10-14, 2006 Mainz, Germany edited by
N Z |S|
1968 1968 1972
52 ΛV
updated from: O. Hashimoto, H. Tamura, Prog. Part. Nucl. Phys. 57, 564 (2006)
AZ
Λ[Z − 1] AZ
Λ[Z − 1] AZ
Λ[Z − 1] AZ
ΛZ AZ
ΛZ
⇢ ⇢ n n K− π− Λ u u ¯ u ¯ u d d d d s s n K+ π+ Λ u u u u d d d ¯ d s ¯ s n ⇢ ⇢ n n ⇢ n K+ Λ e e0 p u u u u d d s ¯ s γ∗ ⇢ ⇢ n n K− Λ u u ¯ u ¯ u d d s s
π0
u u p Λ u u d d s ¯ s ⇢ ⇢ n n K0 π− p d d ¯ u u
AZ
Λ [Z − 2] AZ
Λ [Z − 2]
✓ Charge conserving reactions ✓ Single charge exchange reactions (SCX) ✓ Double charge exchange reactions (DCX)
89 ΛY
MHY = q (Eπ + MA − EK)2 − (p2
π + p2 K − 2pπ pK cos θ)
BΛ = MA−1 + MΛ − MHY ✓ dσ dΩ ◆ = A ρx · NA · 1 Nbeam · fbeam · NK εexp · dΩ ¯ σ2−14 = Z θ=14
θ=2
✓ dσ dΩ ◆ dΩ , Z θ=14
θ=2 dΩ 89Y
Λ Y
SKS spectrometer KEK 12-GeV Proton Synchrotron Japan
✓ -EFT (NLO)
✓ one boson exchange model
Few-Body Syst. (2013) 54, 801
✓ effective - mean field models
H.-J. Schulze, E. Hiyama
✓ phenom. pion exchange model
✓ 2-body interaction: AV18 & Usmani
Λ Λ Σ N N π π
p=1,18
ij
ij
p=1,4
λi
λi
i
N N N N N N ∆ π π π π N N N N N N N N π π N N N ∆
2π O2π,P ijk
2π O2π,S ijk
ijk
✓ 3-body interaction: Urbana IX & Usmani
Λ Λ π π N N N N Λ Λ Σ π π N N N N Σ π π N Λ Λ N N
λij
λij
λij
λi
π (rλi) τ z i
λij
λij
λij
π(rλi) σλ · σi
✓ 2-body interaction ✓ 3-body interaction
λij
λij
λij = WD T 2 π (rλi) T 2 π (rλj)
π(r)
r−¯ r a
T
✓ diffusion Monte Carlo
∞
n=0
∞
n=0
✓ diffusion Monte Carlo
w
w
✓ diffusion Monte Carlo
w
w
✓ auxiliary field
i
2 γdτO2 =
2 +√−γdτxO
2 γdτO2
2 γdτO2 O
i
i
r
r0
s s0 s00
✓ auxiliary field diffusion Monte Carlo
✓ auxiliary field diffusion Monte Carlo
✓ extended wavefunction: nucleons + hyperons ✓ new propagation:
i
i
i<j
i<j<k
λ
λ
λ,i
λ,i<j
ΛZ
✓ auxiliary field diffusion Monte Carlo
i
i
i<j
i<j<k
λ
λ
λ,i
λ,i<j
ΛHe
ΛHe
λi
c
T (RN, SN) ψΛ T (RΛ, SΛ)
i=1
✏ (ri, si)
✏ (ri, si)
T (Rκ, Sκ) =
i<j
c (rij) Φκ(Rκ, Sκ)
λ
i
NN + V SD ΛN = 1
3NN
n=1
n
n
3NN
n=1 3
α=1
n
nα
NN
n=1 3
α=1
n
nα
NΛ
n=1 3
α=1
n
nα
NNNΛ
n=1 3
α=1
n
nα
NN
i=1
i
i
iα,jβ
iα,jβ
ij
λµ
1024 2048 3072 4096 5120 6144 7168 8192 # nodes 0.05 0.1 0.15 0.2 0.25 1/t (sec
16 MPI ranks per node
AFDMC scaling @ Mira (ANL)
32,768 configurations, 25 steps, 28 nucleons in a periodic box, ρ=0.16 fm
system CPU time BΛ error
41 ΛCa - 40Ca
∼ 30 k hrs ∼ 0.75 MeV
49 ΛCa - 48Ca
∼ 55 k hrs ∼ 0.75 MeV
91 ΛZr - 90Zr
∼ 350 k hrs ∼ 0.75 MeV
209 ΛPb - 208Pb
∼ 4.2 M hrs ∼ 0.75 MeV AFDMC ∼ A3 σ ∼ 1/ √ N
BΛ [MeV] A-2/3
208 89 40 28 16 12 9 7 6 5 4 3 s p d f g
emulsion (K-,π-) (π+,K+) (e,e’K+) AFDMC 0.0 5.0 10.0 15.0 20.0 25.0 30.0 0.0 0.1 0.2 0.3 0.4 0.5
3
3 Λn
1 2 +⌘
Λ
Λ 3 ΛH
1 2 +⌘
4 ΛH
4 ΛHe
BΛ [MeV] A-2/3
208 89 40 28 16 12 9 7 6 5 4 3 s p d f g
emulsion (K-,π-) (π+,K+) (e,e’K+) AFDMC 0.0 5.0 10.0 15.0 20.0 25.0 30.0 0.0 0.1 0.2 0.3 0.4 0.5
3
ΛHe, 7 ΛLi, 7 ΛBe
4 ΛH 4 ΛHe @ J-PARC
3 Λn
1 2 +⌘
Λ
Λ 3 ΛH
1 2 +⌘
4 ΛH
4 ΛHe
BΛ [MeV] A-2/3
208 89 40 28 16 12 9 7 6 5 4 3 s p d f g
emulsion (K-,π-) (π+,K+) (e,e’K+) AFDMC 0.0 5.0 10.0 15.0 20.0 25.0 30.0 0.0 0.1 0.2 0.3 0.4 0.5
3
ΛHe
ΛZ)
5 He 17 O
3
k=1
σ
λµ
4He
5 ΛHe
6 ΛΛHe
6 ΛΛHe
−0.11
−0.11
4He
4He
16O
40Ca
48Ca
[ fm-3 ] r [ fm ] Nucleons (x3)
16O 17 O 17 O
0.00 0.05 0.10 0.15 0.20 0.0 1.0 2.0 3.0 4.0
ΛO
ΛO
unpublished
Λ (xΛρb) + mΛ
0.0 0.2 0.4 0.6 0.8 1.0
[ f m
] 0.0 0.1 0.2 0.3 0.4 0.5 x 1.0 2.0 3.0 4.0 µ [ GeV ]
Λ (ρΛ) + ρΛ
Λ
Λ
E [MeV] b [fm-3] PNM N 20 40 60 80 100 120 140 0.0 0.1 0.2 0.3 0.4 0.5 0.6
particle fraction b [fm-3] n
0.3 0.4 0.5 0.6 10-2 10-1 100 AV8’+UIX
ρth
Λ = 0.24(1) fm−3
ρth
Λ = 0.24(1) fm−3
ρth
Λ = 0.34(1) fm−3
E [MeV] b [fm-3] PNM N N + NN (I) 20 40 60 80 100 120 140 0.0 0.1 0.2 0.3 0.4 0.5 0.6
particle fraction b [fm-3] n
0.3 0.4 0.5 0.6 10-2 10-1 100 AV8’+UIX
0.66(2)M 2.09(1)M M [M0] c [fm-3] PNM N N + NN (I) N + NN (II) 0.0 0.4 0.8 1.2 1.6 2.0 2.4 2.8 0.0 0.2 0.4 0.6 0.8 1.0 PSR J1614-2230 PSR J0348+0432 2.45(1)M 1.36(5)M
M [M0] R [km] PNM N N + NN (I) N + NN (II) 0.0 0.4 0.8 1.2 1.6 2.0 2.4 2.8 10 11 12 13 14 15 16 PSR J1614-2230 PSR J0348+0432 PSR J0348+0432
NN+NNN
BB+NNN BB+BBB
NN
AFDMC G-matrix
M [M0] R [km] PNM N N + NN (I) N + NN (II) 0.0 0.4 0.8 1.2 1.6 2.0 2.4 2.8 10 11 12 13 14 15 16 PSR J1614-2230 PSR J0348+0432 PSR J0348+0432
NN+NNN
BB+NNN BB+BBB
NN
AFDMC G-matrix
BΛ [MeV] A-2/3 ΛN ΛN + ΛNN (I) ΛN + ΛNN (II)
0.0 0.0 0.1 0.2 0.3 0.4 0.5
AFDMC G-matrix
BΛ [MeV] A-2/3 ΛN ΛN + ΛNN (I) ΛN + ΛNN (II)
0.0 0.0 0.1 0.2 0.3 0.4 0.5
PSR J0348+0432
NN+NNN
BB+NNN BB+BBB
NN
G-matrix
M [M0] c [fm-3] PNM N N + NN (I) N + NN (II) 0.0 0.4 0.8 1.2 1.6 2.0 2.4 2.8 0.0 0.2 0.4 0.6 0.8 1.0 PSR J1614-2230 PSR J0348+0432
AFDMC
λij
λij
λij
✓ 3-body interaction
λij
λij
λij = WD T 2 π (rλi) T 2 π (rλj)