Pith. sign in

REVIEW

Tunable electrochemistry with moir\'e flat bands and topological defects at twisted bilayer graphene

Not yet reviewed by Pith; the record is open.

This paper has not been read by Pith yet. Machine review is queued; the pith claim, tier, and objections will appear here once it completes.

SPECIMEN: schema-true, not a live event

T0 review · schema-true

One-sentence machine reading of the paper's core claim.

pith:XXXXXXXX · record.json · timestamp

arxiv 2108.06826 v1 pith:E646OUQW submitted 2021-08-15 cond-mat.mes-hall cond-mat.mtrl-sciphysics.chem-ph

classification cond-mat.mes-hallcond-mat.mtrl-sciphysics.chem-ph
keywords moirflatanglebandselectrochemicaltransferbandbilayer
verification ladder T0 review T1 audit T2 compute T3 formal

Signed reviews

No signed human review yet.

0 comments
read the original abstract

Tailoring electron transfer dynamics across solid-liquid interfaces is fundamental to the interconversion of electrical and chemical energy. Stacking atomically thin layers with a very small azimuthal misorientation to produce moir\'e superlattices enables the controlled engineering of electronic band structures and the formation of extremely flat electronic bands. Here, we report a strong twist angle dependence of heterogeneous charge transfer kinetics at twisted bilayer graphene electrodes with the greatest enhancement observed near the 'magic angle' (~1.1 degrees). This effect is driven by the angle-dependent tuning of moir\'e-derived flat bands that modulate electron transfer processes with the solution-phase redox couple. Combined experimental and computational analysis reveals that the variation in electrochemical activity with moir\'e angle is controlled by atomic reconstruction of the moir\'e superlattice at twist angles <2 degrees, and topological defect AA stacking regions produce a large anomalous local electrochemical enhancement that cannot be accounted for by the elevated local density of states alone. Our results introduce moir\'e flat band materials as a distinctively tunable paradigm for mediating electrochemical transformations.

Discussion (0). Continue with ORCID to comment.

Pith tools