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Si-CMOS compatible materials and devices for mid-IR microphotonics. Analysis of Threshold Current Behavior for Bulk and Quantum-Well Germanium Laser Structures. Single-Crystal Germanium Growth on Amorphous Silicon. Photonic crystal structures for light trapping in thin-film Si solar cells: Modeling, process and optimizations. Engineering broadband and anisotropic photoluminescence emission from rare earth doped tellurite thin film photonic crystals. Fundamental research topics delve into optical, electri...

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EMAT Homepage | photonics.mit.edu Reviews
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Si-CMOS compatible materials and devices for mid-IR microphotonics. Analysis of Threshold Current Behavior for Bulk and Quantum-Well Germanium Laser Structures. Single-Crystal Germanium Growth on Amorphous Silicon. Photonic crystal structures for light trapping in thin-film Si solar cells: Modeling, process and optimizations. Engineering broadband and anisotropic photoluminescence emission from rare earth doped tellurite thin film photonic crystals. Fundamental research topics delve into optical, electri...
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EMAT Homepage | photonics.mit.edu Reviews

https://photonics.mit.edu

Si-CMOS compatible materials and devices for mid-IR microphotonics. Analysis of Threshold Current Behavior for Bulk and Quantum-Well Germanium Laser Structures. Single-Crystal Germanium Growth on Amorphous Silicon. Photonic crystal structures for light trapping in thin-film Si solar cells: Modeling, process and optimizations. Engineering broadband and anisotropic photoluminescence emission from rare earth doped tellurite thin film photonic crystals. Fundamental research topics delve into optical, electri...

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EMAT Publications

http://photonics.mit.edu/Publications.html

Si-CMOS compatible materials and devices for mid-IR microphotonics. Analysis of Threshold Current Behavior for Bulk and Quantum-Well Germanium Laser Structures. Single-Crystal Germanium Growth on Amorphous Silicon. Photonic crystal structures for light trapping in thin-film Si solar cells: Modeling, process and optimizations. Engineering broadband and anisotropic photoluminescence emission from rare earth doped tellurite thin film photonic crystals. EMAT in our own words!

2

EMAT Fundamentals -- Model

http://photonics.mit.edu/Model.html

EMAT Fundamentals – Model. Si-CMOS compatible materials and devices for mid-IR microphotonics. Analysis of Threshold Current Behavior for Bulk and Quantum-Well Germanium Laser Structures. Single-Crystal Germanium Growth on Amorphous Silicon. Photonic crystal structures for light trapping in thin-film Si solar cells: Modeling, process and optimizations. Engineering broadband and anisotropic photoluminescence emission from rare earth doped tellurite thin film photonic crystals. That raise new questions.

3

EMAT Fundamentals -- Discover

http://photonics.mit.edu/Discover.html

EMAT Fundamentals – Discover. Si-CMOS compatible materials and devices for mid-IR microphotonics. Analysis of Threshold Current Behavior for Bulk and Quantum-Well Germanium Laser Structures. Single-Crystal Germanium Growth on Amorphous Silicon. Photonic crystal structures for light trapping in thin-film Si solar cells: Modeling, process and optimizations. Engineering broadband and anisotropic photoluminescence emission from rare earth doped tellurite thin film photonic crystals. That raise new questions.

4

EMAT Sponsors

http://photonics.mit.edu/Sponsors.html

Si-CMOS compatible materials and devices for mid-IR microphotonics. Analysis of Threshold Current Behavior for Bulk and Quantum-Well Germanium Laser Structures. Single-Crystal Germanium Growth on Amorphous Silicon. Photonic crystal structures for light trapping in thin-film Si solar cells: Modeling, process and optimizations. Engineering broadband and anisotropic photoluminescence emission from rare earth doped tellurite thin film photonic crystals. Air Force Office of Research. Analog Devices, Inc.

5

EMAT Fundamentals -- Prototype

http://photonics.mit.edu/Prototype.html

EMAT Fundamentals – Prototype. Si-CMOS compatible materials and devices for mid-IR microphotonics. Analysis of Threshold Current Behavior for Bulk and Quantum-Well Germanium Laser Structures. Single-Crystal Germanium Growth on Amorphous Silicon. Photonic crystal structures for light trapping in thin-film Si solar cells: Modeling, process and optimizations. Engineering broadband and anisotropic photoluminescence emission from rare earth doped tellurite thin film photonic crystals. That raise new questions.

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Group Members

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Members of the Ab-Initio Physics Research Group. We are located in building 6C. In the condensed matter theory division of the physics department. Our fax number is (617)253-2562. Our research group is headed by John D. Joannopoulos, the Francis Wright Davis Professor of Physics and Director of the Institute for Soldier Nanotechnologies. He is a principal investigator for the. Physics group within the Research Laboratory for Electronics. He is a member of the National Academy of Sciences. Room 13-3065 (E...

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Silicon Photonics Lab. - ½Ç¸®ÄÜ ±¤±â¼ú ¿¬±¸½Ç

http://spl.kaist.ac.kr/links.html

Find Multilayer reflection spectrum. Silicon-based Microphotonics Research Group. Http:/ daedalus.caltech.edu. Http:/ www.stanford.edu/group/BrongersmaGroup/. Http:/ www.ece.rochester.edu/ fauchet/. Http:/ www.pv.unsw.edu.au/personnel/mag.html. Http:/ photonics.mit.edu/. Http:/ www.e16.physik.tu-muenchen.de/index2.en.htm. Http:/ www.physics.uiuc.edu/People/Faculty/profiles/Nayfeh. Http:/ www.science.unitn.it/ semicon/index.html. Http:/ www.ct.infn.it/Matis/. Http:/ www.amolf.nl/polman/.

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Group Members

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Members of the Ab-Initio Physics Research Group. We are located in building 6C. In the condensed matter theory division of the physics department. Our fax number is (617)253-2562. Our research group is headed by John D. Joannopoulos, the Francis Wright Davis Professor of Physics and Director of the Institute for Soldier Nanotechnologies. He is a principal investigator for the. Physics group within the Research Laboratory for Electronics. He is a member of the National Academy of Sciences. Room 13-3065 (E...

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Flashing pictures of photonic group! | Photonics Group

More Exciting Research Stories Coming Soon. A SEM picture of a pillar - based photonic crystal optical microcavity. From Prof. Ruda' group. Bus of Plasmonic gap waveguides 40 nm in width for active passive. From Prof. Helmy' group. SEM image of PMMA strip on gold film for enhanced surface plasmon excitation. From Prof. Mohammad Mojahedi's group. A SEM image of a photonic crystal slab structure used as an optical biosensor. In a 200 µm diameter mesa. From Prof. Levi’s group. March 27, 10. March 12, 10.

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MEPhI - Photonics

photonics.mit.edu photonics.mit.edu

EMAT Homepage

Si-CMOS compatible materials and devices for mid-IR microphotonics. Analysis of Threshold Current Behavior for Bulk and Quantum-Well Germanium Laser Structures. Single-Crystal Germanium Growth on Amorphous Silicon. Photonic crystal structures for light trapping in thin-film Si solar cells: Modeling, process and optimizations. Engineering broadband and anisotropic photoluminescence emission from rare earth doped tellurite thin film photonic crystals. Fundamental research topics delve into optical, electri...

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國立彰化師範大學 光電研究所

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