Nilpotent operator

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In operator theory, a bounded operator T on a Hilbert space is said to be nilpotent if Tn = 0 for some n. It is said to be quasinilpotent if its spectrum σ(T) = 0.

[edit] Examples

In the finite dimensional case, i.e. when T is a square matrix with complex entries, σ(T) = 0 if and only if T is similar to a matrix whose only nonzero entries are on the superdiagonal, by the Jordan canonical form. In turn this is equivalent to Tn = 0 for some n. Therefore, for matrices, quasinilpotency coincides with nilpotency.

This is not true when H is infinite dimensional. Consider the Volterra operator, defined as follows: consider the unit square X = [0,1] × [0,1] ⊂ R2, with the Lebesgue measure m. On X, define the (kernel) function K by

K(x,y) =
\left\{
  \begin{matrix}
    1, & \mbox{if} \; x \geq y\\ 
    0, & \mbox{otherwise}. 
  \end{matrix}
\right.

The Volterra operator is the corresponding integral operator T on the Hilbert space L2(X, m) given by

T f(x) = \int_0 ^1 K(x,y) f(y) dy.

The operator T is not nilpotent: take f to be the function that is 1 everywhere and direct calculation shows that Tn f ≠ 0 (in the sense of L2) for all n. However, T is quasinilpotent. First notice that K is in L2(X, m), therefore T is compact. By the spectral properties of compact operators, any nonzero λ in σ(T) is an eigenvalue. But it can be shown that T has no nonzero eigenvalues, therefore T is quasinilpotent.

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