TY - JOUR
T1 - 12-inch X-ray optics based on MEMS process
AU - Ishikawa, Kumi
AU - Ezoe, Yuichiro
AU - Numazawa, Masaki
AU - Ogawa, Tomohiro
AU - Sato, Mayu
AU - Nakamura, Kasumi
AU - Ohashi, Takaya
AU - Mitsuda, Kazuhisa
AU - Maeda, Ryutaro
AU - Hiroshima, Hiroshi
AU - Kurashima, Yuichi
AU - Noda, Daiji
N1 - Publisher Copyright:
© 2016, Springer-Verlag Berlin Heidelberg.
PY - 2017/7/1
Y1 - 2017/7/1
N2 - A large size X-ray optic with a 12-inch silicon wafer is fabricated to increase X-ray collecting power. The 12-inch silicon optic is formed by a combination of photolithography, dry etching and chemical mechanical polishing techniques. Furthermore, in order to smooth surfaces of the etched sidewalls used as X-ray reflection plane, the optic is annealed with high temperature. To verify the surface profile, X-ray reflectivity measurements are conducted with Al Kα 1.49 keV and reflected X-rays are detected for the first time. From the X-ray reflectivity data, it is suggested that the optic has ridge and slope structures on the sidewall surfaces, which decrease the reflection region by shadowing a part of the sidewall surface and changing a practical incident angle. An estimated surface roughness is ∼ 2 nm rms, which is consistent with the surface profiles measured by an atomic force microscope.
AB - A large size X-ray optic with a 12-inch silicon wafer is fabricated to increase X-ray collecting power. The 12-inch silicon optic is formed by a combination of photolithography, dry etching and chemical mechanical polishing techniques. Furthermore, in order to smooth surfaces of the etched sidewalls used as X-ray reflection plane, the optic is annealed with high temperature. To verify the surface profile, X-ray reflectivity measurements are conducted with Al Kα 1.49 keV and reflected X-rays are detected for the first time. From the X-ray reflectivity data, it is suggested that the optic has ridge and slope structures on the sidewall surfaces, which decrease the reflection region by shadowing a part of the sidewall surface and changing a practical incident angle. An estimated surface roughness is ∼ 2 nm rms, which is consistent with the surface profiles measured by an atomic force microscope.
UR - https://www.scopus.com/pages/publications/84968546985
U2 - 10.1007/s00542-016-2980-6
DO - 10.1007/s00542-016-2980-6
M3 - 文章
AN - SCOPUS:84968546985
SN - 0946-7076
VL - 23
SP - 2815
EP - 2821
JO - Microsystem Technologies
JF - Microsystem Technologies
IS - 7
ER -