Quasi-monolithic structures for spaceflight using hydroxide-catalysis bonding
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[1] G. Mueller,et al. Bonding SiC to SiC Using a Sodium Silicate Solution , 2012 .
[2] B. Oreb,et al. Chemical bonding of ultra low expansion glass substrates with aqueous NaOH solution , 2011 .
[3] Paul V. Mammini,et al. A bonded precision optical assembly using potassium hydroxide , 2009, Optical Engineering + Applications.
[4] Gopal Vasudevan,et al. Balloon exoplanet nulling interferometer (BENI) , 2009, Optical Engineering + Applications.
[5] S. Rowan,et al. Initial interferometric pre-investigations for LISA , 2009 .
[6] G. Mueller,et al. Hydroxide‐Bonding Strength Measurements for Space‐Based Optical Missions , 2008 .
[7] Christian J. Killow,et al. Hydroxide-catalysis bonding for stable optical systems for space , 2005 .
[8] A. Rüdiger,et al. Successful testing of the LISA Technology Package (LTP) interferometer engineering model , 2005 .
[9] Chaoyang Wei,et al. Study of thermal behaviors in CO2 laser irradiated glass , 2005 .
[10] Lynn W. Huff,et al. The Gravity Probe-B star-tracking telescope , 2003 .
[11] Sheila Rowan,et al. Mechanical losses associated with the technique of hydroxide-catalysis bonding of fused silica , 1998 .
[12] Dz-Hung Gwo,et al. Ultraprecision bonding for cryogenic fused-silica optics , 1998, Optics & Photonics.
[13] A. Preston. Stability of materials for use in space-based interferometric missions , 2010 .
[14] H. Nijmeijer,et al. Hydroxide catalysis bonding of silicon carbide , 2008 .
[15] Albert-Einstein-Institut Hannover. Subtraction of test mass angular noise in the LISA technology package interferometer , 2008 .
[16] S. Gossler. The suspension systems of the interferometric gravitational-wave detector GEO600 , 2004 .
[17] E. Black. An introduction to Pound–Drever–Hall laser frequency stabilization , 2001 .