Open Access

Table A.1.

Atomic line data used for the many-line SPINOR inversion sorted by central wavelength (CWL) and separated in spectral regions.

RID CWL [Å] Element log(gf) Lower Upper Significance
E [eV] J Config J Config I Q U V
R02 5225.53 Fe I -4.889 0.110121 1.0 s2 a5D 1.0 (5D)sp z7D 3.0e-03 2.0e-03 2.0e-03 1.0e-03
5225.82 Cr I -1.420 2.707900 3.0 3d5(4P)4s a5P 2.0 4s4p(1P) y5F

R03 5226.38 Cr I -2.724 4.116400 5.0 3d5(2G2)4s c3G 5.0 3d5(4F)4p v5G 1.0e-02 9.9e-01 9.9e-01 1.0e-03
5226.54 Ti II -1.260 1.565800 1.5 3d3 b2D 1.5 3d2(3F)4p z2D
5226.59 Ti I -3.460 3.323200 2.0 4s4p(3P) x3F 3.0 3d24s(4S)5s 5P
5226.86 Fe I -0.555 3.038500 2.0 4s4p(3P) z7P 2.0 4s(6D)5s e7D
5226.90 Fe I -1.906 4.294400 2.0 3d64s2 b1D2 3.0 3d7(2D2)4p x1F
5226.90 Cr I -0.932 3.375200 2.0 3d5(4P)4s b3P 2.0 4s4p(3P) w5D
5226.92 Ca I -3.407 3.728400 2.0 3p64s4f 3F 1.0 3p63d8g 3D
5226.98 Cr II -3.416 10.761500 3.5 4s4p(3P) u4G 2.5 3d4(a3F)4d 4G
5227.03 Y II -2.272 7.257200 3.0 4d5d e1F 2.0 4d7p 3F
5227.07 Cr I -1.720 2.709900 1.0 3d5(4P)4s a5P 2.0 4s4p(1P) x5P
5227.10 Fe II -2.452 6.703000 0.5 3d6(3P1)4s c2P 1.5 3d6(3D)4p y2P
5227.12 Fe II -3.353 9.575400 4.5 3d54s22H 3.5 4s4p(3P) t2F
5227.15 Fe I -1.352 2.424200 1.0 3d64s2 a3P2 2.0 3d7(4F)4p y3D
5227.19 Fe I -1.328 1.557400 3.0 3d7(4F)4s a3F 2.0 4s4p(3P) z3D
5227.52 Fe I -2.511 5.351600 4.0 4s(6D)5s e7D 3.0 3d7(4F)7p 5G
5227.55 Ti I -2.017 3.708700 3.0 4s4p(1P) w3D 4.0 3d24p2 h5D
5227.56 V I -1.323 2.256300 2.5 4s4p(3P) z6D 3.5 3d4(5D)5s e6D

R06 5229.85 Fe I -1.057 3.283246 1.0 (5D)sp z5D 0.0 s6D)5s e5D 3.0e-03 2.0e-03 2.0e-03 1.0e-03
5229.87 Fe I -0.201 4.220646 4.0 (4F)4p y5F 4.0 (4F)4d h5D
5230.19 Ca I -3.229 3.599700 2.0 3p64s5d 3D 1.0 3p63d10f 3P
5230.21 Co I -1.940 1.740300 1.5 3p63d74s2 a4P 1.5 3p63d8(3F)4p y4D
5230.21 Cr II -3.486 8.727800 4.5 3d4(3G)4p y2H 5.5 3d4(5D)4d e4G
5230.22 Cr I -1.830 2.709900 1.0 3d5(4P)4s a5P 2.0 4s4p(1P) y5F
5230.27 Mn II -2.599 10.214800 3.0 3d5(2F)4p y3G 3.0 3d5(4G)5s e5G
5230.40 Co I -0.489 4.110438 1.5 (3F)4p y4D 1.5 (3F)4d e4D
5230.69 Fe I -2.490 4.294703 2.0 s2 b1D2 2.0 (4F)5p 5F

R07 5232.50 Cr II -2.340 4.071504 3.5 d5 b4F 4.5 (5D)4p z4F 1.0e-02 9.9e-01 9.9e-01 5.0e-04
5232.95 Fe I -0.200 2.940044 4.0 (5D)sp z7P 5.0 s6D)5s e7D
5233.21 Ti I -3.357 1.733633 1.0 (4P)4s a5P 0.0 (4P)4p x3P

R09 5237.08 Co I -0.355 4.175373 2.5 (3F)4p y4G 3.5 3F)s5s g2F 2.3e-03 3.5e-03 2.6e-03 1.0e-03
5237.24 Y II -1.560 7.945200 2.0 4d6p 3D 3.0 4d8s 3D
5237.26 Fe I -3.451 3.546500 2.0 3d7(2D2)4s a1D 3.0 4s4p(3P) w5G
5237.33 Cr II -1.380 4.073400 4.5 3d5 b4F 4.5 3d4(5D)4p z4F
5237.35 Ti I -3.000 1.502591 4.0 s2 a1G 3.0 (3P)sp v3D
5237.42 Cr I -1.569 4.261500 5.0 3d5(4G)4p y5H 4.0 3d44s5s e5H
5237.43 Nb I -1.390 1.042800 0.5 4d4(a5D)5s a4D 0.5 4d35s(c3P)5p y4P

R10 5238.54 Ti I -0.996 2.092200 2.0 4s4p(3P) z5F 1.0 3d24s(4F)5s e5F 2.0e-04 2.0e-03 2.0e-03 1.0e-04
5238.57 Ti I -1.091 2.092398 2.0 (3F)sp z5F 1.0 s4F)5s e5F
5238.59 Ti I -2.074 0.848400 5.0 3d3(4F)4s a5F 4.0 (3P)sp y5D
5238.62 Fe II -5.295 2.891213 2.5 d5 4s2 a6S 1.5 (5D)4p z6F
5238.95 Fe II -2.788 10.857600 2.5 4s4p(3P) y6F 2.5 4p2(1D) 6D
5238.96 Cr I -1.450 2.708800 2.0 3d5(4P)4s a5P 1.0 4s4p(1P) x5P

5240.36 Fe I -3.537 3.267333 5.0 (2H)4s b3H 4.0 (3H)sp y3G 2.0e-03 2.0e-02 2.0e-02 1.0e-02
5240.48 Cr I -0.804 3.668273 2.0 (5D)sp y5P 3.0 4s5s f5D

R12 5242.40 Fe I -3.248 4.638200 1.0 4s4p(1P) y5P 2.0 3d64s(6D)5d 5D 3.0e-03 1.0e-02 1.0e-02 1.0e-03
5242.42 Ni II -1.631 12.552900 0.5 3p63d8(3F)4d 2P 0.5 3p63d8(3P)5p 4P
5242.42 Sc I -1.542 2.319900 0.5 4s24p 2P 1.5 3d4s(1D)5s 2D
5242.45 Y II -1.717 7.882100 1.0 4d6p 3D 1.0 4d8s 3D
5242.50 Fe I -0.967 3.634300 6.0 3d64s2 a1I 5.0 3d7(2G)4p z1H
5242.50 Co II -1.669 12.034300 4.0 3p63d7(4F)5p 3F 3.0 3p63d7(2H)4d 3F

R13 5243.32 Mn II -2.611 10.661300 2.0 3d5(4F)4p 3F 2.0 3d5(4P)5s e3P 3.0e-03 1.0e-02 1.0e-02 1.0e-03
5243.35 Cr I -0.580 3.395000 2.0 4s4p(3P) z7D 1.0 3d44s5s f7D
5243.45 Cr II -2.764 4.042300 2.5 3d5 a2F 2.5 3d4(5D)4p z4F
5243.46 Ti I -2.658 2.305400 3.0 4s4p(3P) z5D 3.0 3d24s(4F)5s e3F
5243.49 Ca I -3.442 3.599700 2.0 3p64s5d 3D 1.0 3p63d10f 3D
5243.70 Ti I -1.450 2.344714 2.0 (2P)4s c3P 2.0 (3P)sp u3D
5243.78 Fe I -0.950 4.256509 3.0 (4F)4p y5F 4.0 (4F)4d g5F

R14 5246.77 Cr II -2.480 3.713810 0.5 (3P)4s b4P 1.5 (5D)4p z4P 4.0e-04 2.0e-04 2.0e-04 1.0e-04
5246.96 V I -1.683 2.253448 1.5 (4F)sp z6F 2.5 (5D)5s e6D
5247.05 Fe I -4.946 0.087291 2.0 s2 a5D 3.0 (5D)sp z7D
5247.29 Ti I -0.727 2.103090 3.0 (3F)sp z5F 2.0 s4F)5s e5F
5247.57 Cr I -1.640 0.961039 0.0 s2 a5D 1.0 (6S)4p z5P

5249.09 Fe I -1.480 4.473573 3.0 (4F)4p z3G 3.0 (4F)4d f3F 2.3e-03 9.9e-01 9.9e-01 1.0e-03
5249.27 Ti I -4.653 0.818196 2.0 (4F)4s a5F 3.0 (4F)4p y3D
5249.44 Cr II -2.620 3.757897 1.5 (3P)4s b4P 2.5 (5D)4p z6D

R15 5250.21 Fe I -4.938 0.121274 0.0 s2 a5D 1.0 (5D)sp z7D 4.0e-04 2.0e-04 2.0e-04 1.0e-04
5250.65 Fe I -2.281 2.198014 2.0 (4P)4s a5P 3.0 (5D)sp y5P
5250.81 Nd II -2.720 0.744600 4.5 4f4(5I)5d 6K 3.5 4f4(5I)6p 6I
5250.82 Cr I -3.456 3.987700 3.0 4s4p(3P) x5D 2.0 3d44s5s e5P

R16 5253.02 Fe I -3.840 2.278758 2.0 s2 a3P2 1.0 (5D)sp y5P 2.3e-03 3.5e-03 5.0e-01 1.0e-03
5253.46 La I -0.820 0.130589 2.5 6s2 a2D 1.5 6p y4F
5253.47 Fe I -1.670 3.283246 1.0 (5D)sp z5D 1.0 s6D)5s e5D

R17 5254.65 Co I -0.389 3.970900 3.5 3p63d8(3F)4p y4D 3.5 3p63d8(3F)4d e4D 2.0e-04 2.0e-03 2.0e-03 1.0e-04
5254.85 Co I -2.805 4.208700 2.5 3p63d8(3F)4p 6S 2.5 3p63d8(3F)4d f2F
5254.90 Cr I -0.610 3.409600 3.0 4s4p(3P) z7D 2.0 3d44s5s f7D
5254.92 Fe II -3.336 3.230500 2.5 3d6(3G)4s a4G 2.5 3d6(5D)4p z4F
5254.95 Fe I -4.834 0.110121 1.0 s2 a5D 2.0 (5D)sp z7D
5254.98 Fe I -1.742 4.294400 2.0 3d64s2 b1D2 3.0 3d7(4F)5p 5F
5255.11 Cr I -0.200 3.463529 4.0 (5D)sp y7P 5.0 4s5s f7D

R18 5255.66 Fe I -2.050 4.220400 4.0 3d7(4F)4p y5F 5.0 3d7(4F)4d g5F 3.0e-03 1.0e-02 1.0e-02 1.0e-03
5255.73 Fe I -1.801 4.283300 2.0 3d7(4F)4p y5F 2.0 3d7(4F)4d f5P
5255.81 Ti I -0.650 2.117100 4.0 4s4p(3P) z5F 3.0 3d24s(4F)5s e5F
5255.82 Fe II -3.075 10.857600 2.5 4s4p(3P) y6F 2.5 4s(7S)5s 6S2

Notes. Spectral regions are separated by horizontal lines. The region ID (RID) refers to Table 2. Please note that the significance concept in SPINOR is inspired by a noise level approximation and translates to the inverse of the used weight. Thus, a high significance value leads to a low weight on the respective profile.

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