Uranium (92U) is a naturally occurring radioactive element (radioelement) with no stable isotopes. It has two primordial isotopes, uranium-238 and uranium-235, that have long half-lives and are found in appreciable quantity in Earth's crust. The decay product uranium-234 is also found. Other isotopes such as uranium-233 have been produced in breeder reactors. In addition to isotopes found in nature or nuclear reactors, many isotopes with far shorter half-lives have been produced, ranging from 214U to 242U (except for 220U). The standard atomic weight of natural uranium is 238.02891(3).

Natural uranium consists of three main isotopes, 238U (99.2739–99.2752% natural abundance), 235U (0.7198–0.7202%), and 234U (0.0050–0.0059%). All three isotopes are radioactive (i.e., they are radioisotopes), and the most abundant and stable is uranium-238, with a half-life of 4.463×109years (about the age of the Earth).

Uranium-238 is an alpha emitter, decaying through the 18-member uranium series into lead-206. The decay series of uranium-235 (historically called actino-uranium) has 15 members and ends in lead-207. The constant rates of decay in these series makes comparison of the ratios of parent-to-daughter elements useful in radiometric dating. Uranium-233 is made from thorium-232 by neutron bombardment.

Uranium-235 is important for both nuclear reactors (energy production) and nuclear weapons because it is the only isotope existing in nature to any appreciable extent that is fissile in response to thermal neutrons, i.e., thermal neutron capture has a high probability of inducing fission. A chain reaction can be sustained with a large enough (critical) mass of uranium-235. Uranium-238 is also important because it is fertile: it absorbs neutrons to produce a radioactive isotope that decays into plutonium-239, which also is fissile.

List of isotopes

NuclideHistoric nameZNIsotopic mass (Da)Discovery yearHalf-lifeDecay modeDaughter isotopeSpin and parityNatural abundance (molefraction)
Excitation energyNormal proportionRange of variation
214U921220.52+0.95 −0.21msα210Th0+
215U92123215.026720(11)1.4(9)msα211Th5/2−#
β+?215Pa
216U92124216.024760(30)2.25+0.63 −0.40msα212Th0+
216mU2206keV0.89+0.24 −0.16msα212Th8+
217U92125217.024660(86)#19.3+13.3 −5.6msα213Th(1/2−)
β+?217Pa
218U92126218.023505(15)650+80 −70μsα214Th0+
218mU2117keV390+60 −50μsα214Th8+
IT?218U
219U92127219.025009(14)60(7)μsα215Th(9/2+)
β+?219Pa
221U92129221.026323(77)0.66(14)μsα217Th(9/2+)
β+?221Pa
222U92130222.026058(56)4.7(7)μsα218Th0+
β+?222Pa
223U92131223.027961(63)65(12)μsα219Th7/2+#
β+?223Pa
224U92132224.027636(16)396(17)μsα220Th0+
β+?224Pa
225U92133225.029385(11)62(4)msα221Th5/2+#
226U92134226.029339(12)269(6)msα222Th0+
227U92135227.0311811(91)1.1(1)minα223Th(3/2+)
β+?227Pa
228U92136228.031369(14)9.1(2)minα (97.5%)224Th0+
EC (2.5%)228Pa
229U92137229.0335060(64)57.8(5)minβ+ (80%)229Pa(3/2+)
α (20%)225Th
230U92138230.0339401(48)20.23(2)dα226Th0+
SF?(various)
CD (4.8×10−12%)208Pb + 22Ne
231U92139231.0362922(29)4.2(1)dEC231Pa5/2+#
α (.004%)227Th
232U92140232.0371548(19)68.9(4)yα228Th0+
CD (8.9×10−10%)208Pb + 24Ne
SF (2.7x10−12%)(various)
CD?204Hg + 28Mg
233U92141233.0396343(24)1.5919(15)×105yα229Th5/2+Trace
CD (7.2×10−11%)209Pb + 24Ne
SF?(various)
CD?205Hg + 28Mg
234UUranium II92142234.0409503(12)2.455(6)×105yα230Th0+[0.000054(5)]0.000050– 0.000059
SF (1.64×10−9%)(various)
CD (1.4×10−11%)206Hg + 28Mg
CD (9×10−12%)210Pb + 24Ne 208Pb + 26Ne
234mU1421.257(17)keV33.5(20)msIT234U6−
235UActino-Uranium Actin-Uranium92143235.0439281(12)7.04(1)×108yα231Th7/2−[0.007204(6)]0.007198– 0.007207
SF (7×10−9%)(various)
CD (8×10−10%)211Pb + 24Ne 210Pb + 25Ne
CD (<1.8×10−10%)207Hg + 28Mg 206Hg + 29Mg
235m1U0.076737(18)keV25.7(1)minIT235U1/2+
235m2U2500(300)keV3.6(18)msSF(various)
236UThoruranium92144236.0455661(12)2.342(4)×107yα232Th0+10−11 to 10−10
SF (9.6×10−8%)(various)
CD (2.0×10−11%)208Hg + 28Mg 206Hg + 30Mg
236m1U1052.5(6)keV100(4)nsIT236U4−
236m2U2750(3)keV120(2)nsIT (87%)236U(0+)
SF (13%)(various)
237U92145237.0487283(13)6.752(2)dβ−237Np1/2+Trace
237mU274.0(10)keV155(6)nsIT237U7/2−
238UUranium I92146238.050787618(15)4.463(3)×109yα234Th0+[0.992742(10)]0.992739– 0.992752
SF (5.44×10−5%)(various)
β−β− (2.2×10−10%)238Pu
238mU2557.9(5)keV280(6)nsIT (97.4%)238U0+
SF (2.6%)(various)
239U92147239.0542920(16)23.45(2)minβ−239Np5/2+Trace
239m1U133.7991(10)keV780(40)nsIT239U1/2+
239m2U2500(900)keV>250nsSF?(various)0+
IT?239U
240U92148240.0565924(27)14.1(1)hβ−240mNp0+Trace
α?236Th
241U92149241.06031(5)40#minβ−241Np7/2+#
242U92150242.06296(10)16.8(5)minβ−242Np0+
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Actinides vs fission products

Actinides and fission products by half-life vte
Actinides by decay chainHalf-life range (a)Fission products of 235U by yield
4n (Thorium)4n + 1 (Neptunium)4n + 2 (Radium)4n + 3 (Actinium)4.5–7%0.04–1.25%<0.001%
228Ra№4–6a155Euþ
248Bk>9a
244Cmƒ241Puƒ250Cf227Ac№10–29a90Sr85Kr113mCdþ
232238Puƒ243Cmƒ29–97a137Cs151Smþ121mSn
249Cfƒ242mAmƒ141–351aNo fission products have a half-life in the range of 100a–210ka ...
241Amƒ251Cfƒ430–900a
226Ra№247Bk1.3–1.6ka
240Pu229Th246Cmƒ243Amƒ4.7–7.4ka
245Cmƒ250Cm8.3–8.5ka
239Puƒ24.1ka
230Th№231Pa№32–76ka
236Npƒ233234U№150–250ka99Tc₡126Sn
248Cm242Pu327–375ka79Se₡
1.33Ma135Cs₡
237Npƒ1.61–6.5Ma93Zr107Pd
236U247Cmƒ15–24Ma129I₡
244Pu80Ma... nor beyond 15.7Ma
232Th№238U№235Uƒ№0.7–14.1Ga
₡, has thermal neutron capture cross section in the range of 8–50 barnsƒ, fissile№, primarily a naturally occurring radioactive material (NORM)þ, neutron poison (thermal neutron capture cross section greater than 3k barns)

Uranium-230

Uranium-230 is an artificial isotope of uranium with a half-life of 20.8 days. It has potential to be used in targeted alpha therapy. It is prepared from decay of protactinium-230, which is produced from proton irradiation of thorium targets.

Uranium-232

Uranium-232 has a half-life of 68.9 years and is a side product in the thorium cycle. It has been cited as an obstacle to nuclear proliferation using 233U, because the intense gamma radiation from 208Tl (a daughter of 232U, produced relatively quickly) makes 233U contaminated with it more difficult to handle. Uranium-232 is a rare example of an even-even isotope that is fissile with both thermal and fast neutrons.

Uranium-233

Uranium-233 is a fissile isotope that is bred from thorium-232 as part of the thorium fuel cycle. 233U was investigated for use in nuclear weapons and as a reactor fuel. It was occasionally tested but never deployed in nuclear weapons and has not been used commercially as a nuclear fuel. It has been used successfully in experimental nuclear reactors and has been proposed for much wider use as a nuclear fuel. It has a half-life of around 160,000 years.

Uranium-233 is produced by neutron irradiation of thorium-232. When thorium-232 absorbs a neutron, it becomes thorium-233, which has a half-life of only 22 minutes. Thorium-233 beta decays into protactinium-233. Protactinium-233 has a half-life of 27 days and beta decays into uranium-233; some proposed molten salt reactor designs attempt to physically isolate the protactinium from further neutron capture before beta decay can occur.

Uranium-233 usually fissions on neutron absorption but sometimes retains the neutron, becoming uranium-234. The capture-to-fission ratio is smaller than the other two major fissile fuels, uranium-235 and plutonium-239; it is also lower than that of short-lived plutonium-241, but bested by very difficult-to-produce neptunium-236.

Uranium-234

234U occurs in natural uranium as an indirect decay product of uranium-238, but makes up only 55 parts per million of the uranium because its half-life of 245,500 years is only about 1/18,000 that of 238U. The path of production of 234U is this: 238U alpha decays to thorium-234. Next, with a short half-life, 234Th beta decays to protactinium-234. Finally, 234Pa beta decays to 234U.

234U alpha decays to thorium-230, except for a small percentage of nuclei that undergo spontaneous fission.

Extraction of small amounts of 234U from natural uranium could be done using isotope separation, similar to normal uranium-enrichment. However, there is no real demand in chemistry, physics, or engineering for isolating 234U. Very small pure samples of 234U can be extracted via the chemical ion-exchange process, from samples of plutonium-238 that have aged somewhat to allow some alpha decay to 234U.

Enriched uranium contains more 234U than natural uranium as a byproduct of the uranium enrichment process aimed at obtaining uranium-235, which concentrates lighter isotopes even more strongly than it does 235U. The increased percentage of 234U in enriched natural uranium is acceptable in current nuclear reactors, but (re-enriched) reprocessed uranium might contain even higher fractions of 234U, which is undesirable. This is because 234U is not fissile, though it is fertile. It tends to absorb slow neutrons in a nuclear reactor, becoming fissile 235U.

234U has a neutron capture cross section of about 100 barns for thermal neutrons, and about 700 barns for its resonance integral—the average over neutrons having various intermediate energies. In a nuclear reactor, non-fissile isotopes capture a neutron breeding fissile isotopes. 234U is converted to 235U more easily and therefore at a greater rate than uranium-238 is to plutonium-239 (via neptunium-239), because 238U has a much smaller neutron-capture cross section of just 2.7 barns.

Uranium-235

Uranium-235 makes up about 0.72% of natural uranium. Unlike the predominant isotope uranium-238, it is fissile, i.e., it can sustain a fission chain reaction. It is the only fissile isotope that is a primordial nuclide or found in significant quantity in nature.

Uranium-235 has a half-life of 704million years. It was discovered in 1935 by Arthur Jeffrey Dempster. Its fission cross section for slow thermal neutrons is about 584.3±1 barns. For fast neutrons it is on the order of 1barn. At thermal energy levels, about 5 of 6 neutron absorptions result in fission and 1 of 6 result in neutron capture forming uranium-236. The fission-to-capture ratio improves for faster neutrons.

Uranium-236

Uranium-236 has a half-life of about 23 million years; and is neither fissile with thermal neutrons, nor very good fertile material, but is generally considered a nuisance and long-lived radioactive waste. It is found in spent nuclear fuel and in the reprocessed uranium made from spent nuclear fuel.

Uranium-237

Uranium-237 has a half-life of about 6.75 days. It decays into neptunium-237 by beta decay. It was discovered by Japanese physicist Yoshio Nishina in 1940, who in a near-miss discovery, inferred the creation of element 93, but was unable to isolate the then-unknown element or measure its decay properties.

Uranium-238

Uranium-238 (238U or U-238) is the most common isotope of uranium in nature. It is not fissile, but is fertile: it can capture a slow neutron and after two beta decays become fissile plutonium-239. Uranium-238 is fissionable by fast neutrons, but cannot support a chain reaction because inelastic scattering reduces neutron energy below the range where fast fission of one or more next-generation nuclei is probable. Doppler broadening of 238U's neutron absorption resonances, increasing absorption as fuel temperature increases, is an essential negative feedback mechanism for reactor control.

About 99.274% of natural uranium is uranium-238, which has a half-life of 4.463×109 years. Depleted uranium has an even higher concentration of 238U, and even low-enriched uranium (LEU) is still mostly 238U. Reprocessed uranium is also mainly 238U, with about as much uranium-235 as natural uranium, a comparable proportion of uranium-236, and much smaller amounts of other isotopes of uranium such as uranium-234, uranium-233, and uranium-232.

Uranium-239

Uranium-239 is usually produced by exposing 238U to neutron radiation in a nuclear reactor. 239U has a half-life of about 23.45 minutes and beta decays into neptunium-239, with a total decay energy of about 1.29MeV. The most common gamma decay at 74.660keV accounts for the difference in the two major channels of beta emission energy, at 1.28 and 1.21MeV.

239Np then, with a half-life of about 2.356 days, beta-decays to plutonium-239.