Andrew Lucas
University of Colorado Boulder
226 Papers
1.3K Citations
Andrew Lucas is an academic researcher from University of Colorado Boulder. The author has contributed to research in topics: Quantum & Quasiparticle. The author has an hindex of 42, co-authored 187 publications. Previous affiliations of Andrew Lucas include D-Wave Systems & California Institute of Technology.
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Papers
Ising formulations of many NP problems
TL;DR: This work collects and extends mappings to the Ising model from partitioning, covering and satisfiability, and provides Ising formulations for many NP-complete and NP-hard problems, including all of Karp's 21NP-complete problems.
2.5K
Observation of the Dirac fluid and the breakdown of the Wiedemann-Franz law in graphene
Jesse Crossno,Jing K. Shi,Ke Wang,Xiaomeng Liu,Achim Harzheim,Andrew Lucas,Subir Sachdev,Subir Sachdev,Philip Kim,Takashi Taniguchi,Kenji Watanabe,Thomas A. Ohki,Kin Chung Fong +12 more
TL;DR: Employing high-sensitivity Johnson noise thermometry, an order of magnitude increase in the thermal conductivity and the breakdown of the Wiedemann-Franz law is reported in the thermally populated charge-neutral plasma in graphene, a signature of the Dirac fluid and constitutes direct evidence of collective motion in a quantum electronic fluid.
780
Distinguishing random environmental fluctuations from ecological catastrophes for the North Pacific Ocean
TL;DR: It is shown that time series observations of key physical variables for the North Pacific Ocean that seem to show these behaviours are not deterministically nonlinear, and are best described as linear stochastic, are first direct test for nonlinearity in large-scale physical and biological data for the marine environment.
Hydrodynamics of electrons in graphene
Andrew Lucas,Kin Chung Fong +1 more
TL;DR: A review of recent progress in understanding the hydrodynamic limit of electronic motion in graphene is presented, written for physicists from diverse communities with no prior knowledge of hydrodynamics.
370
Fracton hydrodynamics.
TL;DR: In this article, the authors introduce new classes of hydrodynamic theories inspired by the recently discovered fracton phases of quantum matter, which are characterized by elementary excitations (fractons) with restricted mobility.