Symmetry and topology are central to understanding quantum Hall ferromagnets (QHFMs), two-dimensional electronic phases with spontaneously broken spin or pseudospin symmetry whose wavefunctions also have topological properties1,2. Domain walls between distinct broken-symmetry QHFM phases are predicted to host gapless one-dimensional modes—that is, quantum channels that emerge because of a topological change in the underlying electronic wavefunctions at such interfaces. Although various QHFMs have been identified in different materials3,4,5,6,7,8, interacting electronic modes at these domain walls have not been probed. Here we use a scanning tunnelling microscope to directly visualize the spontaneous formation of boundary modes at domain wal...
Two-dimensional electron gases in strong magnetic fields provide a canonical platform for realizing ...
We study broken symmetry states at integer Landau-level fillings in multivalley quantum Hall systems...
Berrys phase, an inherent constituent of the electronic wave functions, has revolutionarily enriched...
Symmetry and topology are central to understanding quantum Hall ferromagnets (QHFMs), two-dimensiona...
We investigate topological phases of bilayer graphene subject to antiferromagnetic exchange fields, ...
We report the creation and manipulation of structural phase boundaries in the single-layer quantum s...
The interaction between electrons in graphene under high magnetic fields drives the formation of a r...
Nematic quantum fluids with wave functions that break the underlying crystalline symmetry can form i...
Room-temperature realization of macroscopic quantum phases is one of the major pursuits in fundament...
We theoretically investigate the electronic properties of the interface between quantum spin Hall (Q...
We report the creation and manipulation of structural phase boundaries in the single-layer quantum s...
The boundary modes of topological insulators are protected by thesymmetries of the non-trivial bulk....
Realizations of some topological phases in two-dimensional systems rely on the challenge of jointly ...
We investigate interaction-induced valley domain walls in bilayer graphene in the $\nu = 0$ quantum ...
The quantum Hall (QH) effect, a topologically non-trivial quantum phase, expanded the concept of top...
Two-dimensional electron gases in strong magnetic fields provide a canonical platform for realizing ...
We study broken symmetry states at integer Landau-level fillings in multivalley quantum Hall systems...
Berrys phase, an inherent constituent of the electronic wave functions, has revolutionarily enriched...
Symmetry and topology are central to understanding quantum Hall ferromagnets (QHFMs), two-dimensiona...
We investigate topological phases of bilayer graphene subject to antiferromagnetic exchange fields, ...
We report the creation and manipulation of structural phase boundaries in the single-layer quantum s...
The interaction between electrons in graphene under high magnetic fields drives the formation of a r...
Nematic quantum fluids with wave functions that break the underlying crystalline symmetry can form i...
Room-temperature realization of macroscopic quantum phases is one of the major pursuits in fundament...
We theoretically investigate the electronic properties of the interface between quantum spin Hall (Q...
We report the creation and manipulation of structural phase boundaries in the single-layer quantum s...
The boundary modes of topological insulators are protected by thesymmetries of the non-trivial bulk....
Realizations of some topological phases in two-dimensional systems rely on the challenge of jointly ...
We investigate interaction-induced valley domain walls in bilayer graphene in the $\nu = 0$ quantum ...
The quantum Hall (QH) effect, a topologically non-trivial quantum phase, expanded the concept of top...
Two-dimensional electron gases in strong magnetic fields provide a canonical platform for realizing ...
We study broken symmetry states at integer Landau-level fillings in multivalley quantum Hall systems...
Berrys phase, an inherent constituent of the electronic wave functions, has revolutionarily enriched...