Nanoscale Three-Dimensional Imaging of Integrated Circuits Using a Scanning Electron Microscope and Transition-Edge Sensor Spectrometer.

Nathan Nakamura, Paul Szypryt,Amber L Dagel, Bradley K Alpert,Douglas A Bennett, William Bertrand Doriese,Malcolm Durkin, Joseph W Fowler,Dylan T Fox, Johnathon D Gard,Ryan N Goodner, James Zachariah Harris,Gene C Hilton, Edward S Jimenez,Burke L Kernen, Kurt W Larson,Zachary H Levine, Daniel McArthur, Kelsey M Morgan,Galen C O'Neil, Nathan J Ortiz,Christine G Pappas, Carl D Reintsema,Daniel R Schmidt, Peter A Schultz, Kyle R Thompson,Joel N Ullom, Leila Vale,Courtenay T Vaughan, Christopher Walker,Joel C Weber, Jason W Wheeler,Daniel S Swetz

Sensors (Basel, Switzerland)(2024)

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摘要
X-ray nanotomography is a powerful tool for the characterization of nanoscale materials and structures, but it is difficult to implement due to the competing requirements of X-ray flux and spot size. Due to this constraint, state-of-the-art nanotomography is predominantly performed at large synchrotron facilities. We present a laboratory-scale nanotomography instrument that achieves nanoscale spatial resolution while addressing the limitations of conventional tomography tools. The instrument combines the electron beam of a scanning electron microscope (SEM) with the precise, broadband X-ray detection of a superconducting transition-edge sensor (TES) microcalorimeter. The electron beam generates a highly focused X-ray spot on a metal target held micrometers away from the sample of interest, while the TES spectrometer isolates target photons with a high signal-to-noise ratio. This combination of a focused X-ray spot, energy-resolved X-ray detection, and unique system geometry enables nanoscale, element-specific X-ray imaging in a compact footprint. The proof of concept for this approach to X-ray nanotomography is demonstrated by imaging 160 nm features in three dimensions in six layers of a Cu-SiO2 integrated circuit, and a path toward finer resolution and enhanced imaging capabilities is discussed.
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