Chain-End Reactivity and Anisotropic Electronic Softening Define Candidate Design Targets in BPDA/4,4′-ODA Polyimide Insulation

Identifying the molecular origins of thermal and electric-field response can guide polyimide insulation design. We combined an 18-film aromatic imide oligomer ensemble, reactive molecular dynamics, and signed finite-field r2SCAN-3c calculations to separate packing, chain-end chemistry, and directional electronic response. Independently initialized films exhibited a fivefold variation in probe-accessible volume, with distinct connected void geometries at similar accessible fractions. Across sixteen 5 ps thermal trajectories, terminal imide N–H sites accounted for 20 of 21 persistent reference-bond losses; the nonterminal inventory contained 14 new C–O connectivities and one C–N loss. In six matched film pairs, nonterminal records increased from 2 to 5 at 1600 K and from 12 to 19 at 1800 K between 5 and 10 ps, revealing the growing contribution of nonterminal rearrangement. Trajectories extending to 20 ps also resolved the onset of increased mass escape. At ±2 V nm−1, the isolated ether-linked bis-imide fragment showed 0.342–0.841 eV frontier-gap narrowing across six directions, compared with at most 0.049 eV for the imide fragment, despite overlapping size-normalized induced responses. Together, these results identify chain termination and segment orientation as candidate design variables and provide quantitative descriptors for morphology-matched thermal comparisons and orientation-resolved electronic screening.

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Publication Details

Journal
Nanomaterials
Published
2026-09-30
DOI
https://doi.org/10.3390/nano16191236
Primary Topic
Synthesis and properties of polymers
Type
article
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Chain-End Reactivity and Anisotropic Electronic Softening Define Candidate Design Targets in BPDA/4,4′-ODA Polyimide Insulation

Dongqiao Bai, Tianyu Lin
Nanomaterials
Synthesis and properties of polymers
article

Chain-End Reactivity and Anisotropic Electronic Softening Define Candidate Design Targets in BPDA/4,4′-ODA Polyimide Insulation

Dongqiao Bai, Tianyu Lin
article en

Abstract

Identifying the molecular origins of thermal and electric-field response can guide polyimide insulation design. We combined an 18-film aromatic imide oligomer ensemble, reactive molecular dynamics, and signed finite-field r2SCAN-3c calculations to separate packing, chain-end chemistry, and directional electronic response. Independently initialized films exhibited a fivefold variation in probe-accessible volume, with distinct connected void geometries at similar accessible fractions. Across sixteen 5 ps thermal trajectories, terminal imide N–H sites accounted for 20 of 21 persistent reference-bond losses; the nonterminal inventory contained 14 new C–O connectivities and one C–N loss. In six matched film pairs, nonterminal records increased from 2 to 5 at 1600 K and from 12 to 19 at 1800 K between 5 and 10 ps, revealing the growing contribution of nonterminal rearrangement. Trajectories extending to 20 ps also resolved the onset of increased mass escape. At ±2 V nm−1, the isolated ether-linked bis-imide fragment showed 0.342–0.841 eV frontier-gap narrowing across six directions, compared with at most 0.049 eV for the imide fragment, despite overlapping size-normalized induced responses. Together, these results identify chain termination and segment orientation as candidate design variables and provide quantitative descriptors for morphology-matched thermal comparisons and orientation-resolved electronic screening.

NanomaterialsVol. 16(19)
Xi'an Jiaotong University (CN)
Openalex Percentile: Top 24%
Synthesis and properties of polymers
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Chain-End Reactivity and Anisotropic Electronic Softening Define Candidate Design Targets in BPDA/4,4′-ODA Polyimide Insulation — Dongqiao Bai, Tianyu Lin · Nanomaterials (2026) | TGRS Research Map | TGRS