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|a Wang, Zhong
|e author
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|a Massachusetts Institute of Technology. Department of Mechanical Engineering
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|a Massachusetts Institute of Technology. Department of Physics
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|a Jin, Dafei
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|a Fang, Xuanlai
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|a Lu, Ling
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|a Fang, Chen
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|a Joannopoulos, John
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|a Soljacic, Marin
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|a Fu, Liang
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|a Jin, Dafei
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|a Fang, Xuanlai
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|a Lu, Ling
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|a Fang, Chen
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|a Joannopoulos, John
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|a Soljacic, Marin
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|a Fu, Liang
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|a Topological magnetoplasmon
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|b Nature Publishing Group,
|c 2017-05-05T14:59:04Z.
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|z Get fulltext
|u http://hdl.handle.net/1721.1/108697
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|a Classical wave fields are real-valued, ensuring the wave states at opposite frequencies and momenta to be inherently identical. Such a particle-hole symmetry can open up new possibilities for topological phenomena in classical systems. Here we show that the historically studied two-dimensional (2D) magnetoplasmon, which bears gapped bulk states and gapless one-way edge states near-zero frequency, is topologically analogous to the 2D topological p+ip superconductor with chiral Majorana edge states and zero modes. We further predict a new type of one-way edge magnetoplasmon at the interface of opposite magnetic domains, and demonstrate the existence of zero-frequency modes bounded at the peripheries of a hollow disk. These findings can be readily verified in experiment, and can greatly enrich the topological phases in bosonic and classical systems.
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|a United States. Air Force Office of Scientific Research (A9550-12-1-0488)
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|a United States. Department of Energy (DE-SC001052)
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|a United States. Air Force Office of Scientific Research (W911NF-13-D-0001)
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|a Solid-State Solar-Thermal Energy Conversion Center (DE-SC0001299)
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|a en_US
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|a Article
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|t Nature Communications
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