Recent advancements in additive manufacturing have enabled the preparation of free-shaped 3D objects with feature sizes down to and below the micrometer scale. Among the fabrication methods, focused electron beam- and focused ion beam-induced deposition (FEBID and FIBID, respectively) associate a high flexibility and unmatched accuracy in 3D writing with a wide material portfolio, thereby allowing for the growth of metallic to insulating materials. The combination of the free-shaped 3D nanowriting with established chemical vapor deposition (CVD) techniques provides attractive opportunities to synthesize complex 3D core-shell heterostructures. Hence, this hybrid approach enables the fabrication of morphologically tunable layer-based nanostructures with the great potential of unlocking further functionalities. Here, the fundamentals of such a hybrid approach are demonstrated by preparing core-shell heterostructures using 3D FEBID scaffolds for site-selective CVD. In particular, 3D microbridges are printed by FEBID with the (CH)CHCHPt precursor and coated by thermal CVD using the Nb(NMe)(N--Bu) and HFeCo(CO) precursors. Two model systems on the basis of CVD layers consisting of a superconducting NbC-based layer and a ferromagnetic CoFe layer are prepared and characterized with regard to their composition, microstructure, and magneto-transport properties.

Download full-text PDF

Source
http://dx.doi.org/10.1021/acsnano.2c10968DOI Listing

Publication Analysis

Top Keywords

chemical vapor
8
vapor deposition
8
core-shell heterostructures
8
hybrid approach
8
site-selective chemical
4
deposition direct-write
4
direct-write nanoarchitectures
4
nanoarchitectures advancements
4
advancements additive
4
additive manufacturing
4

Similar Publications

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!