Multiple Structure Reconstruction by Dual Dynamic Crosslinking Strategy Inducing Self‐Reinforcing and Toughening the Polyurethane/Nanocellulose Elastomers
Реконструкция множественных структур посредством стратегии двойного динамического сшивания, индуцирующая самоупрочнение и упрочнение полиуретан/наноцеллюлозных эластомеров
2023-01-15
SCID: 54.1/wvg2t6nd
Discuss with AI
2-ureido-4[1H]-pyrimidone (UTCNF)TEMPO-oxidized cellulose nanofibers (TCNF)disulfide bonds (SS)dual dynamic crosslinkinghydrogen bondsmultiple hot-pressing induced strengtheningpolyurethane/nanocellulose elastomerself-healing (4.0 h at 50 °C)self-reinforcing and self-tougheningtensile strength up to 50.0 MPatoughness up to 132.5 MJ m^-3
Figures from the paper
Abstract (AI)
Abstract High‐performance elastomers are expected to possess excellent healing and recycling ability, damage resistance in conjunction with high strength and toughness. Herein, a dual dynamic crosslinking strategy is implemented by multiple hydrogen and disulfide bonds to obtain a novel amorphous and transparent polyurethane/nanocellulose elastomer with excellent self‐healing, self‐reinforcing and toughening performance. First, hydrogen bonds are introduced in TEMPO‐oxidized cellulose nanofibers (TCNF) by modification with 2‐ureido‐4[1H]‐pyrimidone (UTCNF), while disulfide bonds (SS) are introduced in the polyurethane (PU) main chain, leading to the formation of dual dynamic cross‐linking networks. The PU‐SS‐UTCNF elastomer can fully self‐heal within 4.0 h at 50 °C. Surprisingly, for the first time, the PU‐SS‐UTCNF elastomer also self‐strengthens and self‐toughens after multiple hot‐pressing, with tensile strength and toughness that increase by up to 401% and 257% compared to original elastomer samples, up to 50.0 MPa and 132.5 MJ m ‐3 . The self‐strength and self‐toughening effects are attributed to 1) reconstruction of dual dynamic networks that increase the cross‐linking degree during the multiple hot‐pressing processes; 2) multiple hydrogen bonds in the system are beneficial to the orientation of highly crystallized UTCNF, as a replacement of stress‐induced process in deformation under external tensile force.
Key Findings
1
A dual dynamic crosslinking strategy using multiple hydrogen and disulfide bonds produces an amorphous, transparent polyurethane/nanocellulose elastomer with self-healing, self-reinforcing, and toughening properties.
2
After multiple hot-pressing cycles the elastomer self-strengthens and self-toughens, with tensile strength increasing up to 401% and toughness up to 257%, reaching 50.0 MPa and 132.5 MJ m^-3 respectively.
3
Hydrogen bonds are introduced by modifying TEMPO-oxidized cellulose nanofibers (TCNF) with 2-ureido-4[1H]-pyrimidone (UTCNF), and disulfide bonds are incorporated into the polyurethane (PU) main chain, forming dual dynamic networks.
4
The PU-SS-UTCNF elastomer can fully self-heal within 4.0 hours at 50 °C.
5
The self-strengthening/toughening mechanism is attributed to increased cross-linking degree from reconstruction of dual dynamic networks and orientation/crystallization of UTCNF aided by multiple hydrogen bonds during hot-pressing.
Research Object
Amorphous transparent polyurethane/nanocellulose elastomer with dual dynamic crosslinking (PU‑SS‑UTCNF)
Research Subject
Self‑healing, self‑reinforcing and self‑toughening behavior arising from dual dynamic crosslinking via hydrogen bonds (UTCNF) and disulfide bonds (PU‑SS), including reconstruction of networks, increased crosslinking degree during multiple hot‑pressing, and resulting increases in tensile strength and toughness
Publication Details
Publication Date
2023-01-15
Journal
Publisher
ISSN
Cited by
251
Open access PDF
Access Type
Author Information
Download PDF
Subscribe to digest