Abstract
Water plays a fundamental role in wood science and technology, not only governing the multi-scale structure and properties of wood, but also affecting wood processing and application as well as the design of wood-based functional materials. Following a structure–property–function logic, this review summarizes current understanding of wood-water interactions. We outline the hierarchical anatomical structure and chemical composition of wood; distinguish states of water in wood; and clarify the fiber saturation point as the hygroscopic limit versus the cell wall saturation capacity. We discuss sorption isotherms, hysteresis, and diffusion with a coupled poromechanical perspective, highlighting the molecular mechanisms of hygroscopic response of the cell wall components. We summarize the corresponding in-situ characterizations and connect them to modeling across length scales. Facing the functional frontier, we introduce hygromorphic actuation and one-time self-shaping, directional liquid transport and separation, and 4D-printed programmable wood composites. This review establishes an up-to-date understanding of wood-water relations, integrates in-situ techniques with modeling across length scales, and provides inspiring insights for the design and engineering use of wood-based functional materials.
| Original language | English |
|---|---|
| Article number | 101746 |
| Pages (from-to) | 1-33 |
| Number of pages | 33 |
| Journal | Progress in Materials Science |
| Volume | 162 |
| Early online date | 24 May 2026 |
| DOIs | |
| Publication status | E-pub ahead of print - 24 May 2026 |
Keywords
- Wood-water interactions
- Sorption equilibrium and dynamics
- In-situ characterization
- Modeling
- Hygromorphic functional materials
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