Abstract
In order to achieve high-efficiency solar utilization, inspired by the “black carpet effect” of moss population in cold regions, a self-adaptive Janus solar–thermal system with the solar–thermal conversion-conduction-storage-loss control ability is designed. The solar–thermal system features a composite phase change material (CPCM) thermal storage base and a moss-like switchable solar–thermal surface. This surface is constructed from graphene skeletons containing graphene/polydopamine/MXene heterostructures and MXene secondary nano-porous structures. High-efficiency solar–thermal conversion (98.1%) is realized in this surface, due to the interlayer carrier interaction at the heterostructure, as proved by femtosecond transient absorption spectroscopy (fs-TAS), Raman and photoluminescence (PL) spectroscopies, and multiscale calculations, along with the multiple reflections and absorption in porous structures. The converted thermal energy is then rapidly conducted (26.5 W/(m·K)) and stored (236.7 J/g) in the CPCM base. At night, the moss-like surface with ultralow thermal conductivity of 0.03 W/(m·K) and emissivity of 0.2 greatly restrains the thermal loss to the external environment, thereby achieving long-term thermal management (13.3 times longer than that without the system). This study utilized a systematic bioinspired design strategy for preparing the high-performance solar–thermal system, which possesses broad potential for long-term solar utilization.
| Original language | English |
|---|---|
| Article number | e73376 |
| Journal | Advanced Materials |
| Volume | 38 |
| Issue number | 35 |
| DOIs | |
| State | Published - 23 Jun 2026 |
Keywords
- Janus structure
- carrier coupling
- heterostructure
- solar energy
- surface engineering
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