Twisted two-dimensional materials can host flat electronic bands — the setting for superconductivity, correlated insulators, and topological order — but which of those states appears has largely been worked out one material at a time.
A new AI-MI–supported study proposes a general set of organizing principles instead. “Organizing Principles for Moiré Quantum Matter” runs first-principles calculations across more than 600 commensurate twisted van der Waals bilayers and finds that two properties of the monolayer — where its band edge sits in momentum space, and the local orbital character at that edge — together with the symmetry of the moiré pattern predict which emergent lattice forms (honeycomb, kagome, or square) and what topology it carries.
The practical consequence is that moiré flat-band engineering becomes a design problem rather than a case-by-case search: given a monolayer and a twist, the framework says what to expect before the calculation or the sample is made.
AI-MI Faculty B. Andrei Bernevig (Princeton University) is a co-author.
Read the preprint: arXiv:2607.24944

