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March 3, 2026eScience10 citationsOpen Access

Synergistic solar-thermal icephobic armor: Ultrasmall-bandgap MOFs drive efficient anti-/de-icing via superhydrophobic photothermal cooperation

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YZYongshen ZhouKPKe PeiZZZhiwen Zhou

Key Points

  • Record 94.79% solar-thermal conversion is achieved with ultrasmall-bandgap metal-organic frameworks.
  • Extreme anti-/de-icing capabilities include 4,633 seconds icing delay and only 6.0 kPa ice adhesion.
  • Utilizing a bioinspired microarmor, de-icing occurs within just 277 seconds at −15 °C.
  • Stress-dissipative interfaces maintain low ice adhesion strength after 1,200 mechanical flexion cycles.

Abstract

Metal–organic frameworks (MOFs) have been positioned as promising candidates for fabricating photothermal superhydrophobic surfaces, due to their gas-trapping porosity, tunable nanoarchitectures, and notable solar-thermal conversion. Breaking the photon barrier of conventional MOFs, we engineer an ultrasmall-bandgap MOF ( E g = 0.33 eV) into laser-carved hierarchical microarmor, creating sunlight-driven icephobic surfaces with molecular-level warfare capabilities. The bioinspired architecture—featuring in situ grown MOF nanoneedles on laser-etched honeycomb scaffolds—achieves a record-high solar-thermal conversion efficiency (STCE) of 94.79% through ultrafast vibrational relaxation ( τ ≈ 1.25 ps) and bandgap-modulated electron–phonon coupling, as resolved by transient absorption spectroscopy and atomistic simulations. This synergy of multiscale textures and engineered carrier dynamics achieves record-breaking anti-/de-icing at −15 °C: 4,633 s icing delay, 6.0 kPa ice adhesion, and 277 s de-icing speed, all while surviving harsh mechanical ablation and freeze-thaw cycles. Remarkably, after 1,200 mechanical flexion cycles, the ice adhesion strength maintains ultralow values (< 30.0 kPa) compatible with gravity-driven shedding, enabled by stress-dissipative microarchitected interfaces, which is further validated in anti-/de-icing demonstrations on steel-cored aluminum stranded wire and wind turbine blades. This bandgap engineering paradigm pioneers ultrasmall-bandgap MOFs as photothermal icephobic sentinels, integrating semiconductor physics with phonon-engineered energy dissipation for climate-resilient infrastructure. • Ultrasmall-bandgap MOFs (0.33 eV) enable record 94.79% solar-thermal conversion via tailored electron-phonon coupling. • Bioinspired microarmor achieves extreme anti-/de-icing: 4633 s delay, 6.0 kPa adhesion, and 277 s de-icing at −15 °C. • Stress-dissipative interfaces sustain ultralow ice adhesion (<30 kPa) after 1200 mechanical flexion cycles. • Scalable fabrication is validated on real infrastructure: wind turbine blades and power transmission lines.

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Cite This Study

Zhou et al. (2026) studied this question.

synapsesocial.com/papers/69a75f43c6e9836116a2a829https://doi.org/10.1016/j.esci.2026.100539
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