| William Diamond; Vinay NAGARKAL; Mark de JONG; Christopher REGIER; Linda Lin et al. et al. (2019). Apparatus for production of molybdenum-99. Patent Number: IL242695. |
|
Patent |
Materials |
| William Diamond; Vinay NAGARKAL; Mark DE JONG; Christopher REGIER; Linda Lin et al. (2015). Production of molybdenum-99 using electron beams. Patent Number: WO2015176188. |
|
Patent |
Materials |
| William Diamond; Vinay NAGARKAL; Mark de JONG; Christopher REGIER; Linda Lin et al. (2017). Production of molybdenum-99 using electron beams. Patent Number: US20170301426. |
|
Patent |
Materials |
| William Diamond; Vinay NAGARKAL; Mark de JONG; Christopher REGIER; Linda Lin et al. (2018). Production of molybdenum-99 using electron beams. Patent Number: US20180102196. |
|
Patent |
Materials |
| Wilks, R. G.; MacNaughton, J. B.; Kraatz, H.-B.; Regier, T.; Moewes, A. et al. (2006). Combined X-ray Absorption Spectroscopy and Density Functional Theory Examination of Ferrocene-Labeled Peptides. Journal of Physical Chemistry B 110(12) , 5955-5965. 10.1021/jp056573l. |
SGM |
Peer-Reviewed Article |
Materials |
| Wiebe, S; Rhoades, G; Wei, Z; Rosenberg, A; Belev, G et al. (2013). Understanding refraction contrast using a comparison of absorption and refraction computed tomographic techniques. Journal of Instrumentation 8(05) , C05004-C05004. 10.1088/1748-0221/8/05/c05004. |
BMIT-BM |
Peer-Reviewed Article |
Materials |
| Wiebe, Sheldon; Wysokinski, Tomasz W.; Belev, George; Miller, Denise; Webb, Adam et al. (2015). Biomedical Imaging Using Synchrotron Radiation: Experience at the Biomedical Imaging and Therapy (BMIT) Facility at the Canadian Light Source. Synchrotron Radiation News 28(5) , 16-23. 10.1080/08940886.2015.1080065. |
BMIT-BM, BMIT-ID |
Peer-Reviewed Article |
Materials |
| Wiebe, Sheldon; Samadi, Nazanin; Belev, George; Martinson, Mercedes; Bassey, Bassey et al. (2015). Small and Ultra-Small Angle X-Ray Scattering Contrast Obtained With a Synchrotron-Based Shack–Hartmann Imaging System. IEEE Transactions on Nuclear Science 62(5) , 2031-2035. 10.1109/tns.2015.2470555. |
BMIT-BM |
Peer-Reviewed Article |
Materials |
| Wicks, Ryan Christopher (2012). Molecular beam epitaxy of magnetic oxynitride films : construction of a combined growth/analysis system, development of experimental tools and investigation of two oxynitride systems. Supervisor: Damascelli, Andrea. British Columbia, Canada: University of British Columbia. http://hdl.handle.net/2429/43497. |
REIXS |
Doctoral Thesis |
Materials |
| West, Jonathan D.; Zhu, Yujie; Saem, Sokunthearath; Moran-Mirabal, Jose; Hitchcock, Adam P. et al. (2017). X-ray Absorption Spectroscopy and Spectromicroscopy of Supported Lipid Bilayers. Journal of Physical Chemistry B 121(17) , 4492-4501. 10.1021/acs.jpcb.7b02646. |
SM |
Peer-Reviewed Article |
Materials |
| Western, Colin M.; Billinghurst, Brant E. (2019). Automatic and semi-automatic assignment and fitting of spectra with PGOPHER. Physical Chemistry Chemical Physics 21(26) . 10.1039/c8cp06493h. |
FAR-IR |
Peer-Reviewed Article |
Materials |
| Wells, Garth; Achenbach, Sven; Subramanian, Venkat; Jacobs, Michael; Klymyshyn, David et al. (2019). SyLMAND: a microfabrication beamline with wide spectral and beam power tuning range at the Canadian Light Source. Journal of Synchrotron Radiation 26(2) , 565-570. 10.1107/s1600577518017721. |
SYLMAND |
Peer-Reviewed Article |
Materials |
| Wells, Garth; Achenbach, Sven; Klymyshyn, David; Jacobs, Michael; Mazhar, Waqas et al. (2019). High-Aspect-Ratio Micropatterning Capabilities into Thick Resist Layers Using Deep X-ray Lithography at SyLMAND. Synchrotron Radiation News 32(4) , 44-47. 10.1080/08940886.2019.1634438. |
SYLMAND |
Peer-Reviewed Article |
Materials |
| Wei, Zhouping; Wiebe, Sheldon; Chapman, Dean (2013). Ring artifacts removal from synchrotron CT image slices. Journal of Instrumentation 8(06) , C06006-1 - C06006-12. 10.1088/1748-0221/8/06/c06006. |
BMIT-BM |
Peer-Reviewed Article |
Materials |
| Wei, Qiliang; Cherif, Mohamed; Zhang, Gaixia; Almesrati, Ali; Chen, Jiatang et al. (2019). Transforming reed waste into a highly active metal-free catalyst for oxygen reduction reaction. Nano Energy 62, 700-708. 10.1016/j.nanoen.2019.05.083. |
SGM, SXRMB |
Peer-Reviewed Article |
Materials |