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March 10, 2026Advanced Materials Technologies0 citations

New Directions in Focused Ion Beam Induced Deposition for the Nanoprinting of Functional 3D Heterostructures

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FAFrances I. Allen

Key Points

  • The research aims to investigate new approaches in focused ion beam induced deposition for creating multifunctional 3D nanostructures.
  • Utilized helium and neon focused ion beams for enhanced spatial resolution.
  • Explored the isotope effect for generating satellite deposits in nanostructures.
  • Applied dose-controlled ion implantation for engineering internal voids in structures.
  • Revised previous methods for fabricating hollow nanopillars using helium-FIBID.
  • Employed advanced electron microscopy to analyze the chemical and structural properties of the fabricated nanostructures.
  • Achieved precise fabrication of multimaterial architectures.
  • Successfully created hollow nanopillars and explored their structural characteristics.
  • Revealed buried interfaces and crystallite distributions in the fabricated structures.
  • Demonstrated potential applications for next-generation devices and technologies.

Abstract

ABSTRACT The focused ion beam (FIB) microscope is well established as a high‐resolution machining instrument capable of site‐selectively removing material down to the nanoscale. Beyond subtractive processing, however, the FIB can also add material via a technique known as focused ion beam induced deposition (FIBID). Using FIBID, the FIB can thus be employed for the direct‐write of complex nanostructures. This work explores new directions in three‐dimensional FIBID nanoprinting, harnessing unique features of helium and neon FIBs. In particular, the superior spatial resolution of these novel FIBs is leveraged to fabricate precise multimaterial architectures, an isotope effect is used to create satellite deposits, and dose‐controlled implantation of the gaseous ions is used to engineer internal voids. In the context of voids, the fabrication of hollow nanopillars by helium‐FIBID due to concurrent milling (as shown previously by others) is revisited. Insight into the chemical and structural composition of the nanostructures is obtained using advanced electron microscopy, accurately revealing buried interfaces, crystallite distributions, chemical compositions, and material transformations. Next‐generation devices and technologies that could be enabled by the novel heterostructures demonstrated here are discussed, setting the stage for the potential evolution of FIBID into a versatile platform for functional nanomaterials design and fabrication.

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Cite This Study

Frances I. Allen (2026) studied this question.

synapsesocial.com/papers/69af953870916d39fea4c983https://doi.org/10.1002/admt.202502542
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