A note on the isomorphism problem for SK[G]

Extract

Let G be an infinite abelian p-group and let K be a field of characteristic ≠ p. Let K[G] be the set of all sums Σ_g∈Ga_gg where the a_g are in K, and all but finitely many a_g are 0. Then K[G] is a K-algebra, with multiplication induced by the group multiplication on G.

If G is countable, then the isomorphism type of K[G] has been completely described by S. D. Berman [1]. If G is a direct sum of countable groups, one can also describe K[G], as K[⊕_iG_i] ≃ ⊗_iK[G_i]. If K contains all pⁿ-th roots of unity, then K[G] is isomorphic to the ring of continuous functions from a Boolean space X to the field K with the discrete topology. In that case, the group UK[G] of invertible elements of K[G] is isomorphic to the direct sum of ∣G∣ copies of K^×. More generally, if K is of the second kind with respect to p (see below for the definition), the group UK[G] has a simple description.

Consider the subgroup SK[G] of elements Σ_ga_gg which have order a power of p and such that Σ_g a_g = 1. This group is of course much simpler than UK[G]. Classifying SK[G] up to isomorphism reduces to the case where G has no element of infinite height, see [7]. If G is a direct sum of cyclic groups then the isomorphism type of SK[G] has been completely determined, in [2, 3, 7, 8]. The aim of this note is to show that a similar result is in general not possible for uncountable G. We use an invariant Γ associated to abelian groups, and for any regular uncountable cardinal κ, exhibit 2^κ groups G for which Γ(G) = Γ(SK[G]) are pairwise distinct. Our work is based on a construction of Shelah [9], who constructed 2^κ non-isomorphic abelian p-groups of cardinality κ for κ an uncountable regular cardinal.