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A. P. Dove

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Open access Aug 2026

Constructing and decoding tree-ring-like surface patterns on self-assembled polymer platelets

Precise control of surface patterns in assembled nanostructures remains a significant challenge in materials science. Here, we introduce a scalable bottom-up strategy utilizing living crystallization-driven self-assembly (CDSA) to fabricate tunable 3D surface patterns on polymer platelets. Inspired by biological growth increments, our approach leverages temperature-regulated, time-dependent crystallization to direct nanoscale organization, mimicking how nature constructs layered architectures. By exploiting polymer systems with temperature-dependent crystallization kinetics, we achieved diverse morphologies—including layered, concave, and convex features through controlled co-assembly and kinetic self-sorting. Temporal-thermal modulation was implemented in a continuous flow reactor, where precisely programmed residence times and temperature profiles enabled spatially resolved material deposition and growth history encoded in tree-ring-like patterns - control that is challenging or impossible to achieve using conventional batch methods. These features achieved lateral and vertical resolutions of ~73 nm and ~2 nm, respectively, allowing quantitative determination of directional crystallization rates (22.8 nm/s along the long axis and 13.4 nm/s along the short axis). Furthermore, modulating the number of layers provided a practical means to tune surface wettability. Our bioinspired design framework bridges synthetic self-assembly and natural structural logic, expanding opportunities for programmable materials in nanotechnology and functional systems.

Laihui Xiao, Tianlai Xia, A. P. Dove et al. · 0 citations
Open access Jul 2026

Low-temperature alcoholysis as a strategy for polyethylene terephthalate recycling and upcycling

Postconsumer plastic waste has the potential to serve as a valuable feedstock in an integrated circular economy in which it can be interconverted between thermoplastic and thermoset materials. However, the development of cost-effective and sustainable recycling or upcycling methods is often constrained by harsh reaction conditions, limited catalyst performance, and overall low process efficiency. Here, we report the low-temperature (120°C) alcoholysis of polyethylene terephthalate (PET) that allows the application of functional, bioderivable alcohols in the depolymerization process. Terpenoids such as prenol proved highly effective, supporting both efficient depolymerization and repolymerization to PET. The unsaturated terpenolysis products were also used to prepare polymer networks via thiol-ene photochemistry and formulated into photocurable resins suitable for three-dimensional printing using digital light processing technology. The terpenoid-based networks were also able to be efficiently depolymerized, demonstrating the potential for loop-to-loop chemical recycling of PET/terpenoid materials. This work establishes low-temperature alcoholysis of PET as a practical strategy for advancing a broader circular PET-based materials economy.

M. Price, Adam H Redfearn, Steven T. G. Street et al. · 0 citations

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