a.National Engineering Research Center for Advanced Polymer Processing Technology, Key Laboratory of Materials Processing and Mold (Zhengzhou University), Ministry of Education, Zhengzhou University, Zhengzhou 450002, China
b.National Center for International Joint Research of Micro-nano Molding Technology, School of Mechanics and Safety Engineering, Zhengzhou University, Zhengzhou 450001, China
ypliu@zzu.edu.cn (Y.P.L.)
wangz@zzu.edu.cn (Z.W.)
收稿:2025-12-19,
录用:2026-02-01,
网络首发:2026-05-14,
纸质出版:2026-06-05
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Zheng, Z. K.; Zhang, S. F.; Wang, L. Q.; Kuang, M. C.; Zhang, Z.; Wang, C. Y.; Liu, Y. P.; Liu, C. T.; Wang, Z. Melt shear-induced γ-phase crystallization of poly(vinylidene fluoride) in miscible crystalline/crystalline blends. Chinese J. Polym. Sci. 2026, 44, 1926–1939
Ze-Kai Zheng, Shuai-Fei Zhang, Long-Qing Wang, et al. Melt Shear-induced
Zheng, Z. K.; Zhang, S. F.; Wang, L. Q.; Kuang, M. C.; Zhang, Z.; Wang, C. Y.; Liu, Y. P.; Liu, C. T.; Wang, Z. Melt shear-induced γ-phase crystallization of poly(vinylidene fluoride) in miscible crystalline/crystalline blends. Chinese J. Polym. Sci. 2026, 44, 1926–1939 DOI: 10.1007/s10118-026-3607-8.
Ze-Kai Zheng, Shuai-Fei Zhang, Long-Qing Wang, et al. Melt Shear-induced
Shear flow and the addition of poly(1
4-butylene succinate) (PBSU) synergistically enhance
γ
-phase crystallization in poly(vinylidene fluoride) (PVDF). Shear flow promotes
γ
-phase nucleation by orienting the polymer chains
while PBSU facilitates subsequent crystal growth.
Melt shear-induced crystallization of miscible poly(vinylidene fluoride)/poly(1
4-butylene succinate) (PVDF/PBSU) blends was investigated through a series of structural and morphological characterizations. By varying the shear rate and blend composition
we obtained two key findings regarding the
γ
-phase generation. First
the
γ
-phase fraction within the samples showed non-monotonic behavior
initially increasing and then decreasing with increasing shear rate (
$$ \dot{\gamma } $$
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)
indicating the existence of an optimal
$$ \dot{\gamma } $$
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value for maximizing
γ
-phase formation. Second
adding PBSU significantly enhanced shear-induced
γ
-phase crystallization
not only elevating the
γ
-phase fraction at the optimal
$$ \dot{\gamma } $$
https://html.publish.founderss.cn/rc-pub/api/common/picture?pictureId=109377369&type=
https://html.publish.founderss.cn/rc-pub/api/common/picture?pictureId=109377369&type=small
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but also considerably broadening the effective
$$ \dot{\gamma } $$
https://html.publish.founderss.cn/rc-pub/api/common/picture?pictureId=109377390&type=
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range to achieve a high
γ
-phase content. In contrast
PBSU did not promote
γ
-phase formation in untreated blends. These results highlight the synergy between the shear flow and PBSU addition in facilitating the polar
γ
-phase in PVDF. Finally
we constructed shear phase diagrams to depict the
γ
-phase crystallization within the parameter space of the shear rate/chain orientation and blend composition. It is speculated that melt shear primarily facilitates
γ
-phase nucleation through chain orientation
whereas PBSU enhances
γ
-phase growth after nucleation by promoting chain diffusion and/or hydrogen bonding interactions with PVDF. This study contributes to a deeper understanding of
γ
-phase crystallization under she
ar flow and provides a reference for regulating the polar phase of PVDF through direct melt processing.
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