CIESC Journal ›› 2024, Vol. 75 ›› Issue (4): 1394-1413.DOI: 10.11949/0438-1157.20231408
• Reviews and monographs • Previous Articles Next Articles
Yangke XIAO1,2(), Yinlong CHANG1,2(), Ping LI3,4(), Wenjun WANG1,2, Bogeng LI1,2, Pingwei LIU1,2()
Received:
2023-12-31
Revised:
2024-01-28
Online:
2024-06-06
Published:
2024-04-25
Contact:
Ping LI, Pingwei LIU
肖扬可1,2(), 常印龙1,2(), 李平3,4(), 王文俊1,2, 李伯耿1,2, 刘平伟1,2()
通讯作者:
李平,刘平伟
作者简介:
肖扬可(1997—),女,博士研究生,xiaoyangke@zju.edu.cn基金资助:
CLC Number:
Yangke XIAO, Yinlong CHANG, Ping LI, Wenjun WANG, Bogeng LI, Pingwei LIU. Review on polyolefin elastomers with dynamic-chemical cross-linking[J]. CIESC Journal, 2024, 75(4): 1394-1413.
肖扬可, 常印龙, 李平, 王文俊, 李伯耿, 刘平伟. 动态化学交联聚烯烃类弹性体研究进展[J]. 化工学报, 2024, 75(4): 1394-1413.
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Fig.2 (a) Free radical initiation reaction of DCP and OBC; (b) Free radical triggering double-ended vinyl boronic ester to cross-link OBC; (c) Free radical initiating small molecule cross-linker with disulfide bond to cross-link OBC; (d) Stress-strain curves of boronic ester dynamically cross-linked OBC using different DCP amount; (e) Processing of disulfide cross-linked OBC films using different dynamic cross-linker and DCP amount [the ratio of numbers in the figures, such as 3-1, represents 3%(mass) cross-linker loading and 1%(mass) DCP loading]
Fig.4 (a) Synthesis of ethylene/1-tetradecene/9-(but-3-en-1-yl)anthracene copolymers with boronic ester cross-linking; (b) Synthesis of ethylene/1-octene/5-vinyl-2-norbornene copolymer with boronic ester cross-linking; (c) Synthesis of ethylene/propylene /8-furan-1-octene copolymer with DA or imine bond cross-linking; (d) Synthesis of branched POE with carboxyl group and POE with vinyl and polar functional group using Pd catalyst
Fig.5 (a) Preparation of high-performance polyolefin based TPE by dynamic-chemical combination method; (b) Comparison of tensile properties of novel TPE with other dynamically cross-linked elastomers, OBC, and CPOE
Fig.7 (a) Schematic of proposed mesostructure, fractal structure, and aggregate structure of boronic ester cross-linked PE; (b) AFM images of epoxidized myrcene and isoprene copolymers using cross-linkers with different chain length; (c) TEM images of dynamically cross-linked EPR with PEG of different number-average molecular weight(Mn); (d) SEM image of paraffin wax dynamically cross-linked POE
样品类型 | 动态化学键 | Tm/℃ | 杨氏模量/MPa | 断裂强度/MPa | 断裂伸长/ % | 文献 |
---|---|---|---|---|---|---|
商品EPDM | — | — | — | 8.0~17.7 | 184~324 | [ |
商品POE | — | 36~104 | 3.8~5.8 | 1.4~38 | 600~1000 | [ |
商品OBC | — | 120 | 10.6 | 3~15 | 1300 | [ |
EPDM | 酯键 | — | 2.5~4.5 | 19.4~22.7 | 240~390 | [ |
EPR | DA键 | — | 0.84~26.04 | 4~6 | <380 | [ |
EPR | 亚胺键 | — | 0.99~5.41 | 0.83~1.81 | 42~135 | [ |
EPR | DA键 | — | — | 0.006~0.01 | 40~750 | [ |
POE | 硼酸酯键 | — | 4.2~12.8 | 2.5~21.3 | 250~1950 | [ |
POE | 硼酸酯键 | 55~80 | 14.8~29.0 | 12.8~23.8 | 470~630 | [ |
POE | 硼酸酯键 | 75.9~79.8 | — | 27.5~35.3 | >800 | [ |
OBC | 硼酸酯键 | — | — | 15.3 | 2375 | [ |
Table 1 Mechanical properties of dynamically cross-linked polyolefin based elastomers
样品类型 | 动态化学键 | Tm/℃ | 杨氏模量/MPa | 断裂强度/MPa | 断裂伸长/ % | 文献 |
---|---|---|---|---|---|---|
商品EPDM | — | — | — | 8.0~17.7 | 184~324 | [ |
商品POE | — | 36~104 | 3.8~5.8 | 1.4~38 | 600~1000 | [ |
商品OBC | — | 120 | 10.6 | 3~15 | 1300 | [ |
EPDM | 酯键 | — | 2.5~4.5 | 19.4~22.7 | 240~390 | [ |
EPR | DA键 | — | 0.84~26.04 | 4~6 | <380 | [ |
EPR | 亚胺键 | — | 0.99~5.41 | 0.83~1.81 | 42~135 | [ |
EPR | DA键 | — | — | 0.006~0.01 | 40~750 | [ |
POE | 硼酸酯键 | — | 4.2~12.8 | 2.5~21.3 | 250~1950 | [ |
POE | 硼酸酯键 | 55~80 | 14.8~29.0 | 12.8~23.8 | 470~630 | [ |
POE | 硼酸酯键 | 75.9~79.8 | — | 27.5~35.3 | >800 | [ |
OBC | 硼酸酯键 | — | — | 15.3 | 2375 | [ |
Fig.8 (a) Normalized stress relaxation curves at different temperatures; (b) Dilatometry test to determine Tv; (c) Illustration of the temperature-dependent AIE; (d) Coalesce of frequency-dependent material functions at Tv for tanδ
Fig.9 Comparison of functional EPDM, DA bond cross-linked EPDM, and sulfur-cured or peroxide-cured EPDM in Young’s modulus, tensile strength at break and elongation at break (a), and hardness and compression ratio (b); Hot pressing process and reprocessing mechanism of imide and disulfide dynamic chemical cross-linked PB (c); Photos and reaction mechanism of imide and disulfide dynamic chemical cross-linked PB via chemical recycling (d)
Fig.10 (a) Schematic illustrating cross-linking reaction and topological rearrangements via exchange reactions in ester bond cross-linked EPDM; (b) Typical stress-strain curves after multiple reprocessing cycles
Fig.11 Photos of fractured and repaired boronic ester cross-linked SBR, and photos of stretching repaired SBR (a); The typical stress-strain curves of the boronic ester cross-linked SBR repaired at 80℃ for various time (b) and repaired at different temperatures for 24 h (c); Fractured EPDM/SiO2 composites, and self-healing of EPDM/SiO2 composites under external force and heating (d)
Fig.12 Comparison of cross-linked polycycloctene (blue curve) and self-healing samples (red curve): the self-healing sample containing 0.5%(mole fraction) slow boronic ester cross-linking (a), and the self-healing sample containing 0.5%(mole fraction) fast boronic ester cross-linking (b); adhesion test and adhesion mechanism of PB samples with boronic ester cross-linking and permanent cross-linking (c); Adhesion properties of dynamic boronic ester cross-linked SBS (SBS-B) compared with original SBS and irreversible cross-linked SBS (SBS-H) (d)
Fig.13 (a) Reversible shape memory effects of ester bond cross-linked PEVA; (b) Angular variation in the temporary shape “V” of ester cross-linked PEVA during heating and cooling cycles; (c) Heat-triggered shape recovery performance of SBS; (d) Qualitative and quantitative characterization of shape memory behaviour
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