Van Hove singularity-driven giant Nernst signal in twisted double bilayer graphene
Abstract
Twisted graphene layers host van Hove singularities (vHSs), peaks in the electronic density of states, thought to drive exotic phases in moir\'e materials, but their effect on thermal transport has remained unclear. Here we show that vHSs in twisted double bilayer graphene (tDBLG) generate an unusually large Nernst signal-the transverse voltage produced by a longitudinal temperature gradient in a magnetic field. The pronounced Nernst peaks at the vHSs of the conduction and valence bands of tDBLG are tunable by an electric field with a maximum value of at , which is comparable to the best-known Nernst materials. Our theoretical calculations show that the large enhancement of the Nernst signal arises from the Lifshitz transitions around the vHSs. These findings establish the Nernst effect as a sensitive probe of Fermi-surface topology in moir\'e materials, and identify a universal thermoelectric signature of van Hove singularities.
Keywords
Cite
@article{arxiv.2607.25359,
title = {Van Hove singularity-driven giant Nernst signal in twisted double bilayer graphene},
author = {Ujjal Roy and Monosij Roy and Unmesh Ghorai and Arkaprava Mukherjee and Ravi Kumar and Kenji Watanabe and Takashi Taniguchi and Nandini Trivedi and Rajdeep Sensarma and Subroto Mukerjee and Anindya Das},
journal= {arXiv preprint arXiv:2607.25359},
year = {2026}
}