One-dimensional sub-10-nm hard X-ray focusing using laterally graded multilayer mirror

[1]  Akihisa Takeuchi,et al.  Performance Test of Fresnel Zone Plate with 50 nm Outermost Zone Width in Hard X-ray Region , 2005 .

[2]  Chao Zhang,et al.  A compact free-electron laser for generating coherent radiation in the extreme ultraviolet region , 2008 .

[3]  Ryszard S. Romaniuk,et al.  Operation of a free-electron laser from the extreme ultraviolet to the water window , 2007 .

[4]  C Ferrero,et al.  An analytical approach to estimating aberrations in curved multilayer optics for hard x-rays: 2. Interpretation and application to focusing experiments. , 2008, Optics express.

[5]  D. Ratner,et al.  First lasing and operation of an ångstrom-wavelength free-electron laser , 2010 .

[6]  Julian Schwinger,et al.  On gauge invariance and vacuum polarization , 1951 .

[7]  A. Macrander,et al.  Short Focal Length Kirkpatrick-Baez Mirrors for a Hard X-Ray Nanoprobe , 2005 .

[8]  T. Ishikawa,et al.  Relative angle determinable stitching interferometry for hard x-ray reflective optics , 2005 .

[9]  C Ferrero,et al.  An analytical approach to estimating aberrations in curved multilayer optics for hard x-rays: 1. Derivation of caustic shapes. , 2008, Optics express.

[10]  Jörg Maser,et al.  Focusing of hard x-rays to 16 nanometers with a multilayer Laue lens , 2008 .

[11]  T. Ishikawa,et al.  SPring-8 RIKEN beamline III for coherent X-ray optics , 2001 .

[12]  Y. Mori,et al.  Figuring with subnanometer-level accuracy by numerically controlled elastic emission machining , 2002 .

[13]  C. Morawe,et al.  Ray-tracing analysis in aberration of a laterally- graded multilayer mirror , 2010 .

[14]  Hidekazu Mimura,et al.  Direct determination of the wave field of an x-ray nanobeam , 2008 .

[15]  Eric Ziegler,et al.  Design and performance of graded multilayers as focusing elements for x-ray optics , 1999 .

[16]  J. F. van der Veen,et al.  Focusing x-ray beams to nanometer dimensions. , 2003, Physical review letters.

[17]  B. Lengeler,et al.  Focusing hard x rays to nanometer dimensions by adiabatically focusing lenses. , 2005, Physical review letters.

[18]  M. Burghammer,et al.  Hard x-ray nanoprobe based on refractive x-ray lenses , 2005 .

[19]  T. Ishikawa,et al.  Breaking the 10 nm barrier in hard-X-ray focusing , 2010 .

[20]  T. Ishikawa,et al.  Microstitching interferometry for x-ray reflective optics , 2003 .

[21]  P. Cloetens,et al.  Efficient sub 100 nm focusing of hard x rays , 2005 .

[22]  T. Ishikawa,et al.  Efficient focusing of hard x rays to 25nm by a total reflection mirror , 2007 .

[23]  Hidekazu Mimura,et al.  Stitching-angle measurable microscopic-interferometer: Surface-figure metrology tool for hard X-ray nanofocusing mirrors with large curvature , 2010 .

[24]  Yoshio Suzuki,et al.  Resolution Limit of Refractive Lens and Fresnel Lens in X-Ray Region , 2004 .