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March 3, 2026Advanced Materials4 citationsOpen Access

Robust Sustainable Biomass Fluorescent Wood for Heavy Metal Removal and Solar Water Purification

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YZYingying ZhangYWYushuai WuZCZhiyuan Chen

Key Points

  • The composite effectively adsorbs Cu2+ with a remarkable capacity of 298.72 mg/g, enabling effective pollution control.
  • With a low detection limit of 2.3 nM for contaminants, the material offers enhanced sensitivity compared to traditional methods.
  • Observational analysis involved integrating ratiometric fluorescent metal-organic frameworks into a wood matrix for improved performance.
  • This work highlights potential for environmental cleanup and resource upcycling, promoting sustainable practices in water purification.

Abstract

Heavy metal contamination in aquatic environments represents a severe threat to global ecological security. While conventional method such as fluorescent probes, have been investigated for detection purposes, their real-world deployment remains hampered by inherent drawbacks such as limited sensitivity and poor reusability. Herein, we introduce a "living" composite material, fabricated by incorporating ratiometric fluorescent metal-organic frameworks (MOFs) into the natural microchannels of wood, setting a new benchmark for environmental remediation. Specifically, ZIF-8-hybridized fluorescent carbon dots (DRZ-CDs) were firmly immobilized onto a delignified wood (DW) matrix through electrostatic interactions and chelation, resulting in a bifunctional material (DRZ-CDs-DW). The composite exhibits good performance, with an exceptional Cu2+ adsorption capacity of 298.72 mg/g and a low detection limit of 2.3 nM. Going beyond high removal efficiency, we further demonstrate a transformative "waste-to-resource" strategy, in which the exhausted adsorbent (DRZ-CDs-DW+Cu2+) is transformed via in situ sulfidation into a photothermal evaporator (DRZ-CDs-DW-CuS). The resulting system achieves an evaporation rate of 3.54 kg·m-2·h-1, generating purified water, and is suitable for practical uses such as plant irrigation. In summary, by effectively merging fluorescent carbon dot (CDs) functionalization, wood structural engineering, and solar-driven interfacial evaporation, this work realizes a synergistic combination of environmental cleanup and resource upcycling.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/69a75d40c6e9836116a26f72https://doi.org/10.1002/adma.202522271
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