The generation of photocurrent in an ideal two-dimensional Dirac spectrum is symmetry forbidden. In sharp contrast, we show that three-dimensional Weyl semimetals can generically support significant photocurrents due to the combination of inversion symmetry breaking and finite tilts of the Weyl spectra. Symmetry properties, chirality relations, and various dependencies of this photovoltaic effect on the system and the light source are explored in detail. Our results suggest that noncentrosymmetric Weyl materials can be advantageously applied to room temperature detections of mid- and far-infrared radiations.United States. Department of Energy (DE-FG02-03-ER46076
The circular photogalvanic effect (CPGE) is the part of a photocurrent that switches depending on th...
Weyl semimetals are three-dimensional crystalline systems where pairs of bands touch at points in mo...
Ultrafast experiments using sub-picosecond pulses of light are poised to play an important role in t...
The generation of photocurrent in an ideal two-dimensional Dirac spectrum is symmetry forbidden. In ...
A Weyl semimetal is a novel topological phase of matter(1-16), in which Weyl fermions arise as pseud...
The Weyl semimetal is characterized by three-dimensional linear band touching points called Weyl nod...
A Weyl semimetal is a novel topological phase of matter, in which Weyl fermions arise as pseudo-magn...
Weyl semimetals are gapless topological states of matter with broken inversion and/or time reversal ...
Weyl semimetals are crystals in which electron bands cross at isolated points in momentum space. Ass...
Weyl semimetals are gapless topological states of matter with broken inversion and/or time reversal ...
The current-voltage characteristics of a new range of devices built around Weyl semimetals has been ...
The chiral photocurrent or circular photogalvanic effect (CPGE) is a photocurrent that depends on th...
Symmetry plays a central role in conventional and topological phases of matter, making the ability t...
The circular photogalvanic effect (CPGE) is the part of a photocurrent that switches depending on th...
The experimental manifestation of topological effects in bulk materials is attracting enormous resea...
The circular photogalvanic effect (CPGE) is the part of a photocurrent that switches depending on th...
Weyl semimetals are three-dimensional crystalline systems where pairs of bands touch at points in mo...
Ultrafast experiments using sub-picosecond pulses of light are poised to play an important role in t...
The generation of photocurrent in an ideal two-dimensional Dirac spectrum is symmetry forbidden. In ...
A Weyl semimetal is a novel topological phase of matter(1-16), in which Weyl fermions arise as pseud...
The Weyl semimetal is characterized by three-dimensional linear band touching points called Weyl nod...
A Weyl semimetal is a novel topological phase of matter, in which Weyl fermions arise as pseudo-magn...
Weyl semimetals are gapless topological states of matter with broken inversion and/or time reversal ...
Weyl semimetals are crystals in which electron bands cross at isolated points in momentum space. Ass...
Weyl semimetals are gapless topological states of matter with broken inversion and/or time reversal ...
The current-voltage characteristics of a new range of devices built around Weyl semimetals has been ...
The chiral photocurrent or circular photogalvanic effect (CPGE) is a photocurrent that depends on th...
Symmetry plays a central role in conventional and topological phases of matter, making the ability t...
The circular photogalvanic effect (CPGE) is the part of a photocurrent that switches depending on th...
The experimental manifestation of topological effects in bulk materials is attracting enormous resea...
The circular photogalvanic effect (CPGE) is the part of a photocurrent that switches depending on th...
Weyl semimetals are three-dimensional crystalline systems where pairs of bands touch at points in mo...
Ultrafast experiments using sub-picosecond pulses of light are poised to play an important role in t...