Abstract
Ziyu Xing, Ningyuan He
Abstract
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Soft matter: rubber and networks
10.1088/1361-6633/aaafe2 · 2018
Progress in molecular dynamics simulations of mechanically interlocked polymers
10.1021/acs.macromol.5c02674 · 2025
Highly efficient ionic actuators enabled by sliding ring molecule actuation
10.1038/s41467-025-57893-5 · 2025
An extended freely rotating chain model of rubber-like polymers for exploring the Mullins effect
10.1016/j.ijengsci.2026.104584 · 2026
A network alteration theory of rubbery polymers for exploring the damage and mechanochemistry
10.1016/j.ijengsci.2025.104359 · 2025
Tough hydrogels with rapid self-reinforcement
10.1126/science.aaz6694 · 2021
The polyrotaxane gel: a topological gel by figure-of-eight cross-links
10.1002/1521-4095(200104)13:7<485::aid-adma485>3.0.co;2-t · 2001
Novel entropic elasticity of polymeric materials: why is slide-ring gel so soft?
10.1038/pj.2011.85 · 2011
Dynamics of ring-containing polymers: macromolecular rotaxanes, polyrotaxanes and slide-ring networks
10.1016/j.progpolymsci.2024.101854 · 2024
Thermally conductive tough flexible elastomers as composite of slide-ring materials and surface modified boron nitride particles via plasma in solution
10.1063/1.5020325 · 2018
Optically transparent, high-toughness elastomer using a polyrotaxane cross-linker as a molecular pulley
10.1126/sciadv.aat7629 · 2018
Highly tough slide‐crosslinked Gel polymer electrolyte for stable lithium metal batteries
2024
Slide‐Ring based Hydrogel sensors with extreme wide temperature adaptability toward Winter swimming sensing application
10.1002/smll.202508493 · 2025
Construction of skin‐adaptable slide‐ring hydrogels based on bile acids derived polyrotaxanes for smart wound dressing
10.1002/advs.202520750 · 2025
Slide‐Ring structured stress‐electric coupling Hydrogel microspheres for low‐loss transduction between tissues
10.1002/adma.202413156 · 2025
Effect of ring mobility on the dynamics of the slide-ring gels
10.1021/acs.chemmater.4c01235 · 2024
Excluded volume of slide rings in single-chain polyrotaxane
10.1021/acs.macromol.3c02606 · 2024
A constitutive model for slidable cross-links mediated dual cross-linked polymers to understand coupling and hysteresis of dual cross-links
10.1016/j.physa.2025.130458 · 2025
Statistical mechanics of cross-linked polymer networks I. Rubberlike elasticity
10.1063/1.1723791 · 1943
Beziehungen zwischen elastischen konstanten und dehnungsdoppelbrechung hochelastischer stoffe
1942
Elasticity of polymer networks
10.1021/ma0203849 · 2002
Generalised invariants and pseudo-universal relationships for hyperelastic materials: a new approach to constitutive modelling
10.1016/j.jmps.2024.105883 · 2024
Semiempirical theory of relaxation: concentrated polymer solution dynamics
10.1021/ma00011a020 · 2002
The localization model of rubber elasticity
10.1002/masy.201050527 · 2010
Monte Carlo simulation of a grafted polymer chain confined in a tube
10.1063/1.480704 · 2000
Unresolved referenced work
1979
Universality in nonlinear elasticity of biological and polymeric networks and gels
10.1021/ma102154u · 2011
Exploring the impact of ring mobility on the macroscopic properties of doubly threaded slide‐ring Gel networks
2024
Doubly threaded slide-ring polycatenane networks
10.1021/jacs.3c02837 · 2023
Statistical mechanics with topological constraints: Ⅱ
10.1088/0305-4470/1/1/303 · 1968
Rubber elasticity: a scaling approach
10.1007/bf00256236 · 1987
Influence of chain structure and swelling on the elasticity of rubbery materials: localization model description
10.1002/masy.201200098 · 2013
Unresolved referenced work
1975
On the strength and deformation dependence of the tube‐like topological constraints of polymer networks, melts and concentrated solutions. I. The polymer network case
10.1002/actp.1983.010340909 · 1983
On the strength and deformation dependence of the tube‐like topological constraints of polymer networks, melts and concentrated solutions. II. Polymer melts and concentrated solutions
10.1002/actp.1984.010350201 · 1984
Unresolved referenced work
1988
Effect of the electrostatic interactions on stretching of semiflexible and biological polyelectrolytes
10.1021/ma902304x · 2010
Coarse-Grained artificial intelligence for design of brush networks
10.1021/acsmacrolett.3c00479 · 2023
Forensics of polymer networks
10.1038/s41563-023-01663-5 · 2023
Modelling the finite deformation of thermoplastic polymers via hyperinelasticity. Part I: a semi-crystalline polymer under varying crystallinity ratios and deformation rates
10.1016/j.ijnonlinmec.2025.105091 · 2025
Untangling the mechanics of entanglements in slide-ring gels towards both super-deformability and toughness
10.1039/d1sm01737c · doi-reference
A new constitutive relation for rubber
10.5254/1.3538357 · doi-reference
Some forms of the strain-energy function for rubber
10.5254/1.3538343 · doi-reference
A spontaneous equilibrium free energy model for rubber elasticity of slide-ring materials to understand pulley effect and dangling effect
10.1016/j.polymer.2025.128451 · doi-reference
Peculiar nonlinear elasticity of polyrotaxane gels with movable cross-links revealed by multiaxial stretching
10.1021/ma201530z · doi-reference
Hyperinelasticity: an energy-based constitutive modelling approach to isothermal large inelastic deformation of polymers. Part I
10.1016/j.jmps.2024.105790 · doi-reference
Large deformation isotropic elasticity–on the correlation of theory and experiment for incompressible rubberlike solids
10.1098/rspa.1972.0026 · doi-reference
A new micro–macro transition for hyperelastic materials
10.1016/j.jmps.2022.105156 · doi-reference
Time-dependent constitutive behaviors of a dynamically crosslinked glycerogel governed by bond kinetics and chain diffusion
10.1016/j.jmps.2024.105951 · doi-reference
Effect of the inverse Langevin approximation on the solution of the Fokker–Planck equation of non-linear dilute polymer
10.1016/j.jnnfm.2016.02.008 · doi-reference
The generalised mooney space for modelling the response of rubber-like materials
10.1007/s10659-022-09889-1 · doi-reference
Modelling the finite deformation of thermoplastic polymers via hyperinelasticity. Part I: a semi-crystalline polymer under varying crystallinity ratios and deformation rates
10.1016/j.ijnonlinmec.2025.105091 · doi-reference
Forensics of polymer networks
10.1038/s41563-023-01663-5 · doi-reference
Coarse-Grained artificial intelligence for design of brush networks
10.1021/acsmacrolett.3c00479 · doi-reference
Effect of the electrostatic interactions on stretching of semiflexible and biological polyelectrolytes
10.1021/ma902304x · doi-reference
On the strength and deformation dependence of the tube‐like topological constraints of polymer networks, melts and concentrated solutions. II. Polymer melts and concentrated solutions
10.1002/actp.1984.010350201 · doi-reference
On the strength and deformation dependence of the tube‐like topological constraints of polymer networks, melts and concentrated solutions. I. The polymer network case
10.1002/actp.1983.010340909 · doi-reference
Influence of chain structure and swelling on the elasticity of rubbery materials: localization model description
10.1002/masy.201200098 · doi-reference
Rubber elasticity: a scaling approach
10.1007/bf00256236 · doi-reference
Statistical mechanics with topological constraints: Ⅱ
10.1088/0305-4470/1/1/303 · doi-reference
Doubly threaded slide-ring polycatenane networks
10.1021/jacs.3c02837 · doi-reference
Universality in nonlinear elasticity of biological and polymeric networks and gels
10.1021/ma102154u · doi-reference
Monte Carlo simulation of a grafted polymer chain confined in a tube
10.1063/1.480704 · doi-reference
The localization model of rubber elasticity
10.1002/masy.201050527 · doi-reference
Semiempirical theory of relaxation: concentrated polymer solution dynamics
10.1021/ma00011a020 · doi-reference
Generalised invariants and pseudo-universal relationships for hyperelastic materials: a new approach to constitutive modelling
10.1016/j.jmps.2024.105883 · doi-reference
Elasticity of polymer networks
10.1021/ma0203849 · doi-reference
Statistical mechanics of cross-linked polymer networks I. Rubberlike elasticity
10.1063/1.1723791 · doi-reference
A constitutive model for slidable cross-links mediated dual cross-linked polymers to understand coupling and hysteresis of dual cross-links
10.1016/j.physa.2025.130458 · doi-reference
Excluded volume of slide rings in single-chain polyrotaxane
10.1021/acs.macromol.3c02606 · doi-reference
Effect of ring mobility on the dynamics of the slide-ring gels
10.1021/acs.chemmater.4c01235 · doi-reference
Slide‐Ring structured stress‐electric coupling Hydrogel microspheres for low‐loss transduction between tissues
10.1002/adma.202413156 · doi-reference
Construction of skin‐adaptable slide‐ring hydrogels based on bile acids derived polyrotaxanes for smart wound dressing
10.1002/advs.202520750 · doi-reference
Slide‐Ring based Hydrogel sensors with extreme wide temperature adaptability toward Winter swimming sensing application
10.1002/smll.202508493 · doi-reference
Optically transparent, high-toughness elastomer using a polyrotaxane cross-linker as a molecular pulley
10.1126/sciadv.aat7629 · doi-reference
Thermally conductive tough flexible elastomers as composite of slide-ring materials and surface modified boron nitride particles via plasma in solution
10.1063/1.5020325 · doi-reference
Dynamics of ring-containing polymers: macromolecular rotaxanes, polyrotaxanes and slide-ring networks
10.1016/j.progpolymsci.2024.101854 · doi-reference
Novel entropic elasticity of polymeric materials: why is slide-ring gel so soft?
10.1038/pj.2011.85 · doi-reference
The polyrotaxane gel: a topological gel by figure-of-eight cross-links
10.1002/1521-4095(200104)13:7<485::aid-adma485>3.0.co;2-t · doi-reference
Tough hydrogels with rapid self-reinforcement
10.1126/science.aaz6694 · doi-reference