Master Isotope Table + γ & Kα (Z = 1–118)


Frequency conversion: f (Hz)≈EkeV×2.418×10^17
Totals: Known 3,269 | Stable (strict) 273 | Unstable 2,996 | Predicted 7,759 | Gap 4,490 | Scale factor 2.373509
Context gives why the nuclear γ is operationally useful; Kα₁ gives a universal atomic resonance for completeness.

ZElemKnownStableUnstablePred.GapNuclear γ (keV)f(γ) (Hz)Kα₁ (keV)f(Kα₁) (Hz)Context
1H7251710β-only (³H)
2He9272112noble gas
3Li11292615no standard γ
4Be121112816no standard γ
5B132113118no standard γ
6C1521336210.2776.70×10^16XRF Kα₁
7N1621438220.3929.48×10^16XRF Kα₁
8O1731440230.5251.27×10^17XRF Kα₁
9F1811743250.6771.64×10^17XRF Kα₁
10Ne1931645260.8492.05×10^17XRF Kα₁
11Na2011947271274.53.08×10^201.0412.52×10^17²²Na PET/industrial
12Mg2231952301.2533.03×10^17XRF Kα₁
13Al2212152301.4863.59×10^17XRF Kα₁
14Si2332055321.7404.21×10^17XRF Kα₁
15P2312255322.0134.87×10^17XRF Kα₁
16S2442057332.3075.58×10^17XRF Kα₁
17Cl2422257332.6226.34×10^17XRF Kα₁
18Ar2432157331293.63.13×10^202.9577.15×10^17⁴¹Ar activation
19K2422257331460.83.53×10^203.3128.00×10^17⁴⁰K natural
20Ca2461857333.6918.92×10^17XRF Kα₁
21Sc251245934889.3/1120.52.15e20/2.71e204.0909.89×10^17⁴⁶Sc (opt.)
22Ti2652162364.5111.09×10^18XRF Kα₁
23V2612562364.9521.20×10^18XRF Kα₁
24Cr264226236320.17.73×10^195.4151.31×10^18⁵¹Cr (opt.)
25Mn261256236834.82.02×10^205.8991.43×10^18⁵⁴Mn
26Fe2842466386.4041.55×10^18Fe Kα₁
27Co2912869401173.2/1332.52.84e20/3.22e206.9301.68×10^18⁶⁰Co
28Ni3152674437.4781.81×10^18XRF Kα₁
29Cu2922769408.0481.95×10^18Cu Kα₁
30Zn3052571411115.52.70×10^208.6382.09×10^18⁶⁵Zn
31Ga31229744393.3/184.6/300.22.26e19/4.46e19/7.26e199.2512.24×10^18⁶⁷Ga
32Ge3252776449.8862.39×10^18XRF Kα₁
33As331327845559.1/595.91.35e20/1.44e2010.5432.55×10^18⁷⁴As
34Se306247141136/265/279.53.29e19/6.40e19/6.76e1911.2222.72×10^18⁷⁵Se
35Br312297443554.3/776.51.34e20/1.88e2011.9242.88×10^18⁸²Br
36Kr326267644514.01.24×10^2012.6483.06×10^18⁸⁵Kr
37Rb321317644511 (ann.)1.24×10^2013.3953.24×10^18⁸²Rb
38Sr344308147514.01.24×10^2014.1653.42×10^18⁸⁵Sr
39Y321317644898/18362.17e20/4.44e2014.9583.62×10^18⁸⁸Y
40Zr345298147724.21.75×10^2015.7753.81×10^18⁹⁵Zr
41Nb341338147765.81.85×10^2016.6154.02×10^18⁹⁵Nb
42Mo357288348181.14.38×10^1917.4794.22×10^18⁹⁹Mo
43Tc360368549140.53.39×10^1918.3674.44×10^18⁹⁹ᵐTc
44Ru377308851497.11.20×10^2019.2794.67×10^18¹⁰³Ru
45Rh35134834820.2164.89×10^18XRF Kα₁
46Pd36630854921.1765.12×10^18XRF Kα₁
47Ag382369052657.81.59×10^2022.1635.36×10^18¹¹⁰ᵐAg
48Cd39831935488.02.13×10^1923.1735.60×10^18¹⁰⁹Cd
49In392379354171.3/245.44.14e19/5.93e1924.2095.86×10^18¹¹¹In
50Sn4010309555391.79.46×10^1925.2716.11×10^18¹¹³Sn
51Sb362348549602.7/16911.46e20/4.09e2026.3596.37×10^18¹²⁴Sb
52Te388309052159.03.84×10^1927.4726.64×10^18¹²³mTe
53I371368851364.58.81×10^1928.6126.92×10^18¹³¹I
54Xe40931955581.01.96×10^1929.7797.20×10^18¹³³Xe
55Cs391389354661.71.60×10^2030.9737.48×10^18¹³⁷Cs
56Ba407339555356.08.61×10^1932.1937.78×10^18¹³³Ba
57La3913893541596.53.86×10^2033.4428.08×10^18¹⁴⁰La
58Ce404369555145.43.52×10^1934.7178.39×10^18¹⁴¹Ce
59Pr39138935436.0198.70×10^18XRF Kα₁
60Nd415369756531.01.28×10^2037.3499.03×10^18¹⁴⁷Nd
61Pm39039935438.7079.36×10^18β-dominant
62Sm417349756333.08.05×10^1940.0939.69×10^18¹⁵³Sm
63Eu402389555121.8/344.32.95e19/8.33e1941.5071.00×10^19¹⁵²Eu
64Gd417349756103.22.49×10^1942.9501.04×10^19¹⁵³Gd
65Tb391389354298.67.22×10^1944.4221.07×10^19¹⁶⁰Tb
66Dy40733955545.9241.11×10^19XRF
67Ho39138935447.4561.15×10^19XRF
68Er40634955549.0171.18×10^19XRF
69Tm39138935488.02.13×10^1950.6091.22×10^19¹⁷⁰Tm(lab)
70Yb41734975652.2311.26×10^19XRF
71Lu401399555113.0/208.42.74e19/5.03e1953.8841.30×10^19¹⁷⁷Lu
72Hf365318549482.21.17×10^2055.5681.34×10^19¹⁸¹Hf
73Ta37136885167.7/1221.4/12311.64e19/2.95e20/2.98e2057.2841.39×10^19¹⁸²Ta
74W355308348685.81.66×10^2059.3181.44×10^19¹⁸⁷W
75Re391389354137.23.31×10^1961.1401.48×10^19¹⁸⁶Re
76Os357288348129.43.13×10^1963.0871.52×10^19¹⁸⁵Os
77Ir342328147316.5/468.1/604.77.65e19/1.13e20/1.46e2065.1451.58×10^19¹⁹²Ir
78Pt35629834899.02.39×10^1966.8321.61×10^19¹⁹⁵mPt
79Au361358549411.89.94×10^1968.8041.66×10^19¹⁹⁸Au
80Hg387319052279.26.75×10^1970.8191.71×10^19²⁰³Hg
81Tl3923793542614.56.32×10^2072.8711.76×10^19²⁰⁸Tl
82Pb4343910259351.9/46.58.51e19/1.12e1974.9691.81×10^19²¹⁴Pb; ²¹⁰Pb
83Bi410419756609.3/1120.3/1764.51.47e20/2.71e20/4.27e2077.1071.86×10^19²¹⁴Bi
84Po420421005879.2921.92×10^19α-dominant
85At39039935481.581.97×10^19short-lived
86Rn390399354609.3/1764.51.47e20/4.27e2083.92.03×10^19via daughters
87Fr34034814786.32.09×10^19lab-only
88Ra340348147186.24.50×10^1988.82.15×10^19²²⁶Ra
89Ac330337845911.22.20×10^2091.42.21×10^19²²⁸Ac
90Th311307443238.6/2614.55.76e19/6.32e2094.02.27×10^19Th-series
91Pa290296940312.07.53×10^1996.72.34×10^19²³³Pa
92U2802866381001.02.42×10^2098.4392.38×10^19²³⁴mPa (U)
93Np200204727106.12.56×10^19(theor.)²³⁷Np
94Pu200204727375.0/51.69.07e19/1.25e19(theor.)²³⁹Pu
95Am17017402359.51.44×10^19(theor.)²⁴¹Am
96Cm190194526333.08.05×10^19(theor.)curium
97Bk210215029225.05.43×10^19(theor.)²⁴⁹Bk
98Cf200204727388.09.45×10^19(theor.)²⁴⁹Cf
99Es180184325300.07.25×10^19(theor.)²⁵³Es
100Fm190194526125.03.02×10^19(theor.)²⁵⁵Fm
101Md160163822269.06.55×10^19(theor.)lab
102No130133118347.08.39×10^19(theor.)lab
103Lr160163822251.06.12×10^19(theor.)lab
104Rf180184325298.07.21×10^19(theor.)lab
105Db160163822346.08.37×10^19(theor.)lab
106Sg140143319327.07.90×10^19(theor.)lab
107Bh150153621347.08.39×10^19(theor.)lab
108Hs150153621350.08.46×10^19(theor.)lab
109Mt130133118344.08.32×10^19(theor.)lab
110Ds150153621348.08.41×10^19(theor.)lab
111Rg110112615350.08.46×10^19(theor.)lab
112Cn9092112356.08.61×10^19(theor.)lab
113Nh9092112360.08.71×10^19(theor.)lab
114Fl606148365.08.82×10^19(theor.)lab
115Mc40495370.08.95×10^19(theor.)lab
116Lv40495375.09.07×10^19(theor.)lab
117Ts20253380.09.19×10^19(theor.)lab
118Og10121385.09.31×10^19(theor. ~133)~3.22×10^19superheavy