Monolithic Chalcogenide Optical Nanocomposites Enable Infrared System Innovation: Gradient Refractive Index Optics
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Anupama Yadav | Theresa S. Mayer | J. David Musgraves | Peter Wachtel | Carlo G. Pantano | Myungkoo Kang | Andrew Buff | Kathleen A. Richardson | Laura Sisken | Claudia Goncalves | Erwan Baleine | Cesar Blanco | J. D. Musgraves | Alexej V. Pogrebnyakov | T. Mayer | C. Pantano | K. Richardson | E. Baleine | A. Yadav | A. Buff | M. Kang | L. Sisken | Cesar Blanco | C. Rivero‐Baleine | A. Pogrebnyakov | P. Wachtel | C. Lonergan | Claudia Gonçalves | Charmayne Lonergan | Clara Rivero‐Baleine
[1] Florian Bociort. Chromatic paraxial aberration coefficients for radial gradient-index lenses , 1996 .
[2] Martin Richardson,et al. Refractive index patterning of infrared glass ceramics through laser-induced vitrification [Invited] , 2018, Optical Materials Express.
[3] A. Ward,et al. Lattice Vibrations and Interlayer Interactions in CrystallineAs2S3andAs2Se3 , 1971 .
[4] Yann Guimond,et al. Production of complex chalcogenide glass optics by molding for thermal imaging , 2003 .
[5] Kathleen Richardson,et al. Ultralow Dispersion Multicomponent Thin‐Film Chalcogenide Glass for Broadband Gradient‐Index Optics , 2018, Advanced materials.
[6] Hye-Jeong Kim,et al. Fabrication of molded chalcogenide-glass lens for thermal imaging applications. , 2012, Applied optics.
[7] Jasbinder S. Sanghera,et al. Active and passive chalcogenide glass optical fibers for IR applications: a review , 1999 .
[8] Martin J. Booth,et al. Adaptive optical microscopy: the ongoing quest for a perfect image , 2014, Light: Science & Applications.
[9] D T Moore,et al. Gradient-index profile control by field-assisted ion exchange in glass. , 1985, Applied optics.
[10] Guy Beadie,et al. A bio-inspired polymeric gradient refractive index (GRIN) human eye lens. , 2012, Optics express.
[11] Akira Saitoh,et al. Self-developing aspherical chalcogenide-glass microlenses for semiconductor lasers , 2003 .
[12] Jean-Luc Adam,et al. Glass Formation and Properties of Chalcogenides in a GeSe2–As2Se3–PbSe System , 2007 .
[13] Ashutosh Sharma,et al. Large area IR microlens arrays of chalcogenide glass photoresists by grayscale maskless lithography. , 2013, ACS applied materials & interfaces.
[14] Jacques Lucas,et al. Evaluation of glass fibers from the Ga–Ge–Sb–Se system for infrared applications , 2004 .
[15] Dean A. Scribner,et al. Materials for Bio-inspired Optics , 2002 .
[16] A. Hiltner,et al. Tunable polymer lens. , 2008, Optics express.
[17] V. Vassilev,et al. Optical properties of new chalcogenide glasses from the GeSe2–Sb2Se3–PbSe system , 2008 .
[18] C. Arnold,et al. Chalcogenide glass microlenses by inkjet printing , 2011, Applied optics.
[19] Pao Tai Lin,et al. Si-CMOS compatible materials and devices for mid-IR microphotonics , 2013 .
[20] Michael Vollmer,et al. Optical properties of metal clusters , 1995 .
[21] Micro-optical lenslets by photo-expansion in chalcogenide glasses , 1997 .
[22] Theresa S. Mayer,et al. Evidence of spatially selective refractive index modification in 15GeSe 2 -45As 2 Se 3 -40PbSe glass ceramic through correlation of structure and optical property measurements for GRIN applications , 2017 .
[23] W. Shen,et al. Raman study of phonon modes and disorder effects in Pb1−xSrxSe alloys grown by molecular beam epitaxy , 2006 .
[24] D T Moore,et al. Gradient-index optics: a review. , 1980, Applied optics.
[25] Duncan T. Moore,et al. Melt property variation in GeSe 2 ‐As 2 Se 3 ‐PbSe glass ceramics for infrared gradient refractive index (GRIN) applications , 2018, International Journal of Applied Glass Science.
[26] Guy Beadie,et al. Fabrication of microlenses in bulk chalcogenide glass , 1998 .
[27] J. David Musgraves,et al. Engineering novel infrared glass ceramics for advanced optical solutions , 2016, SPIE Defense + Security.
[28] H. Li. Refractive index of silicon and germanium and its wavelength and temperature derivatives , 1980 .
[29] K Tanaka,et al. Optical fabrication of microlenses in chalcogenide glasses. , 1995, Optics letters.
[30] Jean-Luc Adam,et al. Micro-crystallization of the infrared transmitting chalcogenide glass in GeSe2-As2Se3-PbSe system , 2009 .
[31] Daniel Gibson,et al. GRIN optics for multispectral infrared imaging , 2015, Defense + Security Symposium.
[32] Paul K. Manhart,et al. Fundamentals of macro axial gradient index optical design and engineering , 1997 .
[33] Sophie LaRochelle,et al. First- and second-order Bragg gratings in single-mode planar waveguides of chalcogenide glasses , 1999 .
[34] Lionel C. Kimerling,et al. Nonlinear characterization of GeSbS chalcogenide glass waveguides , 2016, Scientific Reports.
[36] Guy Beadie,et al. Achromatic GRIN singlet lens design. , 2013, Optics express.
[37] Kathleen Richardson,et al. New Candidate Multicomponent Chalcogenide Glasses for Supercontinuum Generation , 2018, Applied Sciences.
[38] Anupama Yadav,et al. Infrared Glass–Ceramics with Multidispersion and Gradient Refractive Index Attributes , 2019, Advanced Functional Materials.
[39] Rudolf Frerichs,et al. New Optical Glasses with Good Transparency in the Infrared , 1953 .