Switchable magnetic bulk photovoltaic effect in the two-dimensional magnet CrI3

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作者
Yang Zhang
Tobias Holder
Hiroaki Ishizuka
Fernando de Juan
Naoto Nagaosa
Claudia Felser
Binghai Yan
机构
[1] Max Planck Institute for Chemical Physics of Solids,Department of Physics
[2] Leibniz Institute for Solid State and Materials Research,Department of Condensed Matter Physics
[3] Massachusetts Institute of Technology,Department of Applied Physics
[4] Weizmann Institute of Science,IKERBASQUE
[5] University of Tokyo,Department of Applied Physics and Quantum Phase Electronics Center (QPEC)
[6] Donostia International Physics Center,undefined
[7] Basque Foundation for Science,undefined
[8] RIKEN Center for Emergent Matter Science (CEMS),undefined
[9] University of Tokyo,undefined
来源
Nature Communications | / 10卷
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摘要
The bulk photovoltaic effect (BPVE) rectifies light into the dc current in a single-phase material and attracts the interest to design high-efficiency solar cells beyond the pn junction paradigm. Because it is a hot electron effect, the BPVE surpasses the thermodynamic Shockley–Queisser limit to generate above-band-gap photovoltage. While the guiding principle for BPVE materials is to break the crystal centrosymmetry, here we propose a magnetic photogalvanic effect (MPGE) that introduces the magnetism as a key ingredient and induces a giant BPVE. The MPGE emerges from the magnetism-induced asymmetry of the carrier velocity in the band structure. We demonstrate the MPGE in a layered magnetic insulator CrI3, with much larger photoconductivity than any previously reported results. The photocurrent can be reversed and switched by controllable magnetic transitions. Our work paves a pathway to search for magnetic photovoltaic materials and to design switchable devices combining magnetic, electronic, and optical functionalities.
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