AI Article Synopsis

  • Recent advancements in in situ and operando methods have improved our understanding of fluid-surface interactions, particularly using closed-cell microchips made of silicon nitride in electron microscopes.
  • The performance of these microchips has been hindered by high background scattering from thick encapsulation membranes, which reduce the clarity of signals and resolution.
  • By employing a back-supporting strategy, researchers have successfully reduced the thickness of the encapsulating membranes to around 10 nanometers, enhancing spatial resolution and spectral visibility, with potential applications in various microchip technologies.

Article Abstract

Utilization of in situ/operando methods with broad beams and localized probes has accelerated our understanding of fluid-surface interactions in recent decades. The closed-cell microchips based on silicon nitride (SiN) are widely used as "nanoscale reactors" inside the high-vacuum electron microscopes. However, the field has been stalled by the high background scattering from encapsulation (typically ~100 nanometers) that severely limits the figures of merit for in situ performance. This adverse effect is particularly notorious for gas cell as the sealing membranes dominate the overall scattering, thereby blurring any meaningful signals and limiting the resolution. Herein, we show that by adopting the back-supporting strategy, encapsulating membrane can be reduced substantially, down to ~10 nanometers while maintaining structural resiliency. The systematic gas cell work demonstrates advantages in figures of merit for hitherto the highest spatial resolution and spectral visibility. Furthermore, this strategy can be broadly adopted into other types of microchips, thus having broader impact beyond the in situ/operando fields.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10793956PMC
http://dx.doi.org/10.1126/sciadv.adj6417DOI Listing

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