
FOLLOWUS
State Key Laboratory of Materials-Oriented Chemical Engineering, College of Chemical Engineering, Nanjing Tech University, Nanjing 211816, China
School of Energy and Environment, Southeast University, Nanjing 210096, China
Corresponding author. E-mail address: yongwang@seu.edu.cn(Y. Wang).
收稿:2025-06-23,
修回:2025-08-21,
录用:2025-08-21,
网络首发:2025-09-02,
纸质出版:2026-01
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Zhou Jiemei, Ying Xiang, Li Daiwen, 等. Engineering repairable nanoporous functional coatings on arbitrary substrates by manipulating phase behaviors of block copolymers[J]. 中国化学工程学报(英文), 2026,89(1):36-46.
Zhou Jiemei, Ying Xiang, Li Daiwen, et al. Engineering repairable nanoporous functional coatings on arbitrary substrates by manipulating phase behaviors of block copolymers[J]. Chinese Journal of Chemical Engineering, 2026, 89(1): 36-46.
Zhou Jiemei, Ying Xiang, Li Daiwen, 等. Engineering repairable nanoporous functional coatings on arbitrary substrates by manipulating phase behaviors of block copolymers[J]. 中国化学工程学报(英文), 2026,89(1):36-46. DOI:
Zhou Jiemei, Ying Xiang, Li Daiwen, et al. Engineering repairable nanoporous functional coatings on arbitrary substrates by manipulating phase behaviors of block copolymers[J]. Chinese Journal of Chemical Engineering, 2026, 89(1): 36-46. DOI:
Nanoporous polymers are extensively coated on various substrates to deliver optical
pe
rmselective
or other functions. However
it remains desired to fast produce uniform nanoporous polymer coatings on substrates with complex surfaces. Herein
by manipulating the interactions between block copolymers and selective solvents
we prepare repairable nanoporous polymers on arbitrary substrates. This is realized by an extremely simple sequential coating process: sequential coating of block copolymers and their swelling agents on substrate surfaces. The swelling agents are comprised of two solvents that swell the constituent blocks of the copolymers to different degrees
rapidly producing polymer coatings with uniform
interconnected
sub-50 nm pores. This sequential coating process is able to conformally build nanoporous polymers on nonplanar substrates with large lateral sizes and complex surface features
and also to
in situ
repair defects arising during usages. We further demonstrate that the nanoporous coatings show excellent antireflective and membrane separation performances. This sequential coating process is dictated by polymer—solvent interactions
and is expected to find applications in diverse fields for its simplicity
adaptability
and the capability to produce well-defined nanoporosities.
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