Issue 34, 2022

Programming interactions in magnetic handshake materials

Abstract

The ability to rapidly manufacture building blocks with specific binding interactions is a key aspect of programmable assembly. Recent developments in DNA nanotechnology and colloidal particle synthesis have significantly advanced our ability to create particle sets with programmable interactions, based on DNA or shape complementarity. The increasing miniaturization underlying magnetic storage offers a new path for engineering programmable components for self assembly, by printing magnetic dipole patterns on substrates using nanotechnology. How to efficiently design dipole patterns for programmable assembly remains an open question as the design space is combinatorially large. Here, we present design rules for programming these magnetic interactions. By optimizing the structure of the dipole pattern, we demonstrate that the number of independent building blocks scales super linearly with the number of printed domains. We test these design rules using computational simulations of self assembled blocks, and experimental realizations of the blocks at the mm scale, demonstrating that the designed blocks give high yield assembly. In addition, our design rules indicate that with current printing technology, micron sized magnetic panels could easily achieve hundreds of different building blocks.

Graphical abstract: Programming interactions in magnetic handshake materials

Supplementary files

Article information

Article type
Paper
Submitted
09 May 2022
Accepted
08 Aug 2022
First published
11 Aug 2022

Soft Matter, 2022,18, 6404-6410

Author version available

Programming interactions in magnetic handshake materials

C. X. Du, H. A. Zhang, T. G. Pearson, J. Ng, P. L. McEuen, I. Cohen and M. P. Brenner, Soft Matter, 2022, 18, 6404 DOI: 10.1039/D2SM00604A

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