The nilradical of a commutative ring is the set of all nilpotent elements in the ring, or equivalently the radical of the zero ideal. This is an ideal because the sum of any two nilpotent elements is nilpotent, and the product of any element with a nilpotent element is nilpotent. It can also be characterized as the intersection of all the prime ideals of the ring. Proposition: Let be a commutative ring,
Proof. Let and be a prime ideal, then for some. Thus which implies or. In the second case, suppose for some, then thus or and, by induction on, we conclude, in particular. Therefore is contained in any prime ideal and. Conversely, we suppose and consider the set
which is non-empty, indeed. is partially ordered by and any chain has an upper bound given by, indeed: is an ideal and if for some then for some, which is impossible since ; thus any chain in has an upper bound and we can apply Zorn's lemma: there exists a maximal element. We need to prove that is a prime ideal: let, then since is maximal in, which is to say, there existsuch that, but then, which is absurd. Therefore if, is not contained in any prime ideal or equivalently and finally.
A ring is called reduced if it has no nonzero nilpotent. Thus, a ring is reduced if and only if its nilradical is zero. If R is an arbitrary commutative ring, then the quotient of it by the nilradical is a reduced ring and is denoted by. Since every maximal ideal is a prime ideal, the Jacobson radical — which is the intersection of maximal ideals — must contain the nilradical. A ring R is called a Jacobson ring if the nilradical and Jacobson radical of R/P coincide for all prime ideals P of R''. An Artinian ring is Jacobson, and its nilradical is the maximal nilpotent ideal of the ring. In general, if the nilradical is finitely generated, then it is nilpotent.
Noncommutative rings
For noncommutative rings, there are several analogues of the nilradical. The lower nilradical is the analogue of the radical of the zero ideal and is defined as the intersection of the prime ideals of the ring. The analogue of the set of all nilpotent elements is the upper nilradical and is defined as the ideal generated by all nil ideals of the ring, which is itself a nil ideal. The set of all nilpotent elements itself need not be an ideal, so the upper nilradical can be much smaller than this set. The Levitzki radical is in between and is defined as the largest locally nilpotent ideal. As in the commutative case, when the ring is artinian, the Levitzki radical is nilpotent and so is the unique largest nilpotent ideal. Indeed, if the ring is merely noetherian, then the lower, upper, and Levitzki radical are nilpotent and coincide, allowing the nilradical of any noetherian ring to be defined as the unique largest nilpotent ideal of the ring.