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Direct observation and rational design of nucleation behavior in addressable self-assembly

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arxiv 1712.01315 v2 pith:LQLKLSCV submitted 2017-12-04 cond-mat.soft

Direct observation and rational design of nucleation behavior in addressable self-assembly

classification cond-mat.soft
keywords self-assemblynucleationaddressablestructurecoarse-graineddesignheremodel
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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In order to optimize a self-assembly reaction, it is essential to understand the factors that govern its pathway. Here, we examine the influence of nucleation pathways in a model system for addressable, multicomponent self-assembly based on a prototypical 'DNA-brick' structure. By combining temperature-dependent dynamic light scattering and atomic force microscopy with coarse-grained simulations, we show how subtle changes in the nucleation pathway profoundly affect the yield of the correctly formed structures. In particular, we can increase the range of conditions over which self-assembly occurs by utilizing stable multi-subunit clusters that lower the nucleation barrier for assembling subunits in the interior of the structure. Consequently, modifying only a small portion of a structure is sufficient to optimize its assembly. Due to the generality of our coarse-grained model and the excellent agreement that we find with our experimental results, the design principles reported here are likely to apply generically to addressable, multicomponent self-assembly.

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