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Classification of universal formality maps for quantizations of Lie bialgebras
We settle several fundamental questions about the theory of universal deformation quantization of Lie bialgebras by giving their complete classification up to homotopy equivalence. Moreover, we settle these questions in a greater generality: we give a complete classification of the associated universal formality maps. An important new technical ingredient introduced in this paper is a polydifferential endofunctor in the category of augmented props with the property that for any representation of a prop in a vector space the associated prop admits an induced representation on the graded commutative algebra given in terms of polydifferential operators. Applying this functor to the minimal resolution of the genus completed prop of Lie bialgebras we show that universal formality maps for quantizations of Lie bialgebras are in one-to-one correspondence with morphisms of dg props
satisfying certain boundary conditions, where is a minimal resolution of the prop of associative bialgebras. We prove that the set of such formality morphisms is non-empty. The latter result is used in turn to give a short proof of the formality theorem for universal quantizations of arbitrary Lie bialgebras which says that for any Drinfeld associator there is an associated quasi-isomorphism between the algebras and controlling, respectively, deformations of the standard bialgebra structure in and deformations of any given Lie bialgebra structure in . We study the deformation complex of an arbitrary universal formality morphism and prove that it is quasi-isomorphic to the full (i.e. not necessary connected) version of the graph complex introduced Maxim Kontsevich in the context of the theory of deformation quantizations of Poisson manifolds. This result gives a complete classification of the set of gauge equivalence classes of universal Lie connected formality maps: it is a torsor over the Grothendieck–Teichmüller group and can hence can be identified with the set of Drinfeld associators.