Highly efficient long-range conduction through a biosynthetic nickel-organic framework.

Meysman, Filip J R; Smets, Bent; Hidalgo-Martinez, Silvia; Claes, Nathalie; Schroeder, Bob C; Geelhoed, Jeanine S; Liu, Yun; Alingapoyil Choyikutty, Jiji et al. · Nat Commun · 2026

basic_science · Level V

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Abstract

Biobased electronics aims for disruptive innovation in sustainable electronics but is obstructed by the low intrinsic conductivity of biomaterials. Recently, fibres were discovered within the cell envelope of multi-cellular cable bacteria, which display an exceptional conductivity for a biomaterial. Yet, the molecular structure and electron transport mechanism remain unresolved, thus precluding a detailed structure-function understanding and the development of biomimetic analogues. Here, we demonstrate that each fibre embeds an extended nickel-organic framework, which consists of a bundle of intertwined nanoribbons, each built from stacked repeat units in which multiple nickel centres are linked by organic dithiolene ligands. This metal-organic supramolecular architecture provides extensive conjugation and electron delocalization, thus enabling exceptional conductance over macroscale distances. This suggests a novel design principle for bio-based electronic materials and opens possibilities for biosynthesis of metal-organic frameworks.

Medical subject headings