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Resymmetrizing Broken Symmetry with Hydraulic Pressure
Ke Huang
, Pengjie Wang
,
L. N. Pfeiffer
, K. W. West
, K. W. Baldwin
, Yang Liu
, Xi Lin
Electrical and Computer Engineering
Princeton Quantum Initiative
Research output
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Contribution to journal
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Article
›
peer-review
4
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Keyphrases
Hydrostatic Pressure
100%
Symmetry Breaking
100%
Pseudospin
100%
Hydraulic Pressure
100%
Pseudospin Polarization
100%
Fill Factor
50%
Liquid Phase
50%
Graphene
50%
Hole Concentration
50%
Topological Insulator
50%
Degrees of Freedom
50%
Landau Levels
50%
Many-body
50%
Condensed Matter Physics
50%
Weyl Semimetal
50%
Lattice Structure
50%
Pressure-induced
50%
Sharp Transition
50%
Energy Splitting
50%
Electron-electron Interaction
50%
Quantum State
50%
Coherent Superposition
50%
Dirac Spinors
50%
Quantum Phase
50%
State Form
50%
Spin-valley
50%
Topological Symmetry
50%
Polarization Transitions
50%
Multiple Energy
50%
Tuning Effect
50%
Lowest Landau Level
50%
Quantum Liquid
50%
Physics
Broken Symmetry
100%
Hydraulics
100%
Fluid Statics
100%
Liquid Phase
50%
Graphene
50%
Topological Insulator
50%
Condensed Matter Physics
50%
Metalloid
50%
Electron Scattering
50%
Degree of Freedom
50%
Crystal Structure
50%
Chemistry
Landau Level
100%
Hydraulics
100%
Hole Concentration
50%
Crystal Structure
50%
Crystal System
50%
Metalloid
50%
Graphene
50%
Subband
50%
Electron Scattering
50%
Condensed Matter
50%