Projects per year
Abstract
Many biological tissues are mechanically strong and stiff but can still heal from damage. By contrast, synthetic hydrogels have not shown comparable combinations of properties, as current stiffening approaches inevitably suppress the required chain/bond dynamics for self-healing. Here we show a stiff and self-healing hydrogel with a modulus of 50 MPa and tensile strength up to 4.2 MPa by polymer entanglements in co-planar nanoconfinement. This is realized by polymerizing a highly concentrated monomer solution within a scaffold of fully delaminated synthetic hectorite nanosheets, shear oriented into a macroscopic monodomain. The resultant physical gels show self-healing efficiency up to 100% despite the high modulus, and high adhesion shear strength on a broad range of substrates. This nanoconfinement approach allows the incorporation of novel functionalities by embedding colloidal materials such as MXenes and can be generalized to other polymers and solvents to fabricate stiff and self-healing gels for soft robotics, additive manufacturing and biomedical applications.
Original language | English |
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Pages (from-to) | 599-606 |
Number of pages | 8 |
Journal | Nature Materials |
Volume | 24 |
Issue number | 4 |
Early online date | 7 Mar 2025 |
DOIs | |
Publication status | Published - Apr 2025 |
MoE publication type | A1 Journal article-refereed |
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FEEDBACK/Zhang: Life-inspired physical feedback coupling in multidimensional hydrogels
Zhang, H. (Principal investigator)
01/09/2024 → 31/08/2028
Project: Academy of Finland: Other research funding
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MXTTF: MXene-TTFs nanocomposite for tuneable photonics
Lyu, Z. (Principal investigator)
01/09/2024 → 31/08/2028
Project: Academy of Finland: Other research funding
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LIBER Linder: Life-like hybrid materials
Linder, M. (Principal investigator)
01/01/2022 → 31/12/2026
Project: Academy of Finland: Other research funding
Equipment
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OtaNano - Nanomicroscopy Center
Seitsonen, J. (Manager) & Rissanen, A. (Other)
OtaNanoFacility/equipment: Facility