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◆ Langmuir2026-03-05· Evaporation

Engineering the Melanin Building Block DHICA into a Fe <sup>3</sup> <sup>+</sup> Coordination Coating for Solar Evaporation

Cheng Chang, Sheng Long, Jie Deng, Xiaoqing Shen, Hao Sun, Xu Lin, Yuan Zou

原始摘要(英文原文)· Original abstract
Natural eumelanin exhibits exceptional photoprotective and light-management functions, largely attributed to its fundamental building block 5,6-dihydroxyindole-2-carboxylic acid (DHICA). However, the disordered polymeric structure of eumelanin has hindered the establishment of clear structure–property relationships. While DHICA is a pivotal precursor in eumelanin biosynthesis with superior energy dissipation capacity and metal-binding capability, its potential in constructing bioinspired photothermal systems remains underexplored. Herein, we propose a well-defined Fe 3+ -DHICA coordination complex as a model system to modulate the light-harvesting properties via ligand-to-metal charge transfer (LMCT) strategy. This molecular-level engineering significantly narrows the energy bandgap and extends absorption into the near-infrared (NIR) region. Through rational complexation with Fe 3+, we construct stable Fe 3+ -DHICA networks that exhibit broad and intense LMCT-mediated absorption spanning the UV to NIR regions. This coordination not only suppresses undesired decarboxylation but also promotes efficient nonradiative relaxation for heat generation. The optimized complex demonstrates exceptional solar-driven water evaporation performance when coated on a cellulose foam-based evaporator and enables efficient solar-driven water desalination with excellent evaporation rates and cycling stability. This work offers a deeper understanding of metallo-melanin photophysics and provides a versatile strategy for designing high-performance solar-thermal materials based on eumelanin precursors.
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Engineering the Melanin Building Block DHICA into a Fe <sup>3</sup> <sup>+</sup> Coordination Coating for Solar Evaporation — 科研速览 Science Skim