科技报告详细信息
FY 2005 Infrared Photonics Final Report
Anheier, Norman C. ; Allen, Paul J. ; Ho, Nicolas ; Krishnaswami, Kannan ; Johnson, Bradley R. ; Sundaram, S. K. ; Riley, Bradley M. ; Martinez, James E. ; Qiao, Hong (Amy) ; Schultz, John F.
Pacific Northwest National Laboratory (U.S.)
关键词: Proliferation;    Sulfur;    Chalcogenides;    National Security;    Waveguides;   
DOI  :  10.2172/877073
RP-ID  :  PNNL-15581
RP-ID  :  AC05-76RL01830
RP-ID  :  877073
美国|英语
来源: UNT Digital Library
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【 摘 要 】
Research done by the Infrared Photonics team at Pacific Northwest National Laboratory (PNNL) is focused on developing miniaturized integrated optics for mid-wave infrared (MWIR) and long-wave infrared (LWIR) sensing applications by exploiting the unique optical and material properties of chalcogenide glass. PNNL has developed thin-film deposition capabilities, direct laser writing techniques, infrared photonic device demonstration, holographic optical element design and fabrication, photonic device modeling, and advanced optical metrology—all specific to chalcogenide glass. Chalcogenide infrared photonics provides a pathway to quantum cascade laser (QCL) transmitter miniaturization. QCLs provide a viable infrared laser source for a new class of laser transmitters capable of meeting the performance requirements for a variety of national security sensing applications. The high output power, small size, and superb stability and modulation characteristics of QCLs make them amenable for integration as transmitters into ultra-sensitive, ultra-selective point sampling and remote short-range chemical sensors that are particularly useful for nuclear nonproliferation missions. During FY 2005, PNNL’s Infrared Photonics research team made measurable progress exploiting the extraordinary optical and material properties of chalcogenide glass to develop miniaturized integrated optics for mid-wave infrared (MWIR) and long-wave infrared (LWIR) sensing applications. We investigated sulfur purification methods that will eventually lead to routine production of optical quality chalcogenide glass. We also discovered a glass degradation phenomenon and our investigation uncovered the underlying surface chemistry mechanism and developed mitigation actions. Key research was performed to understand and control the photomodification properties. This research was then used to demonstrate several essential infrared photonic devices, including LWIR single-mode waveguide devices and waveguide couplers. Optical metrology tools were also developed to characterize optical waveguide structures and LWIR optical components.
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