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Organic two-dimensional van der Waals heterostructures

Anupam Prasoon, Nguyen Ngan Nguyen, Mike Hambsch, Puja Singhvi, Sophia Terres, Zijie Xiao, Naveen Goyal, Haoyuan Qi, David Mücke, Florian Auras, Zhiyong Wang, Sein Chung, Miroslav Položij, Hai I. Wang, Kilwon Cho, Ute A. Kaiser, Alexey Chernikov, Mischa Bonn, Stefan C. B. Mannsfeld, Thomas Heine, Xinliang Feng

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En palabras de los autores

Abstract Van der Waals heterostructures based on graphene and inorganic two-dimensional (2D) crystals enable exquisite control of interlayer coupling, and emergent electronic and optical phenomena 1,2 . Extending this concept to organic 2D crystals has been hindered by weak, non-directional interlayer interactions that frustrate lattice registry. Here we introduce a bottom-up strategy for programmable lattice engineering in organic van der Waals heterostructures of 2D polymers. Sequential on-water-surface assembly enables layer-by-layer stacking of chemically distinct 2D polymers with defined lattice registry, stacking sequence and thickness, yielding both lattice-matched and controlled lattice-mismatched heterostructures. Structural characterization reveals commensurate epitaxy in lattice-matched and small-mismatched systems, whereas large-mismatch interfaces exhibit moiré features and strain-relief distortions. Ultrafast spectroscopy demonstrates efficient interfacial charge separation and first-principles calculations reveal built-in electric fields and interfacial potential steps arising from interfacial dipole alignment. Devices exhibit diode-like rectification ratios exceeding 10 7 that systematically decrease with increasing lattice mismatch, establishing organic 2D polymer van der Waals heterostructures as a lattice-engineered platform for (opto)electronic and quantum phenomena.

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Apareció: viernes, 25 de septiembre. Nature. Revista con revisión por pares.

DOI: 10.1038/s41586-026-11074-6