Anchoring-Induced Interfacial Stabilization in Triphenylamine-Based Electrochromic Polymers

Interfacial instability between electrochromic polymers and transparent conductive electrodes remains a major challenge for achieving durable electrochromic devices. Herein, two triphenylamine-fluorene conjugated polymers, TFPA and TFPACA, are synthesized by incorporating phosphonic acid or dual phosphonic acid/carboxylic acid anchoring groups into the polymers. This anchoring strategy strengthens polymer/ITO interfacial interactions, enhances film adhesion, suppresses interfacial defects, and promotes more uniform charge injection and extraction during electrochemical operation. Both polymers exhibit reversible electrochromic behavior, while the dual-anchored TFPACA-based devices deliver a high optical contrast (ΔT) of 45.08%, a coloration efficiency (CE) of 559.7 cm2 C-1, and excellent cycling stability, retaining 86% of the initial optical contrast after 3500 switching cycles. Building energy consumption simulations further indicate an annual energy reduction of 103,319.23 kWh, corresponding to a carbon emission reduction of approximately 51.66 kg CO2. These results highlight anchoring-induced interfacial engineering as an effective strategy for developing high-performance and durable electrochromic polymers.

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Publication Details

Journal
ACS Applied Materials & Interfaces
Published
2026-09-29
DOI
https://doi.org/10.1021/acsami.6c06817
Primary Topic
Conducting polymers and applications
Type
article
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article

Anchoring-Induced Interfacial Stabilization in Triphenylamine-Based Electrochromic Polymers

Hong Fu Meng, Yaowu He, Shunyu Wang, Dongwen Zou et al.
ACS Applied Materials & Interfaces
Conducting polymers and applications
article

Anchoring-Induced Interfacial Stabilization in Triphenylamine-Based Electrochromic Polymers

Hong Fu Meng, Yaowu He, Shunyu Wang, Dongwen Zou, Ying Cui, Hao Sun, Hongyang Li
article en

Abstract

Interfacial instability between electrochromic polymers and transparent conductive electrodes remains a major challenge for achieving durable electrochromic devices. Herein, two triphenylamine-fluorene conjugated polymers, TFPA and TFPACA, are synthesized by incorporating phosphonic acid or dual phosphonic acid/carboxylic acid anchoring groups into the polymers. This anchoring strategy strengthens polymer/ITO interfacial interactions, enhances film adhesion, suppresses interfacial defects, and promotes more uniform charge injection and extraction during electrochemical operation. Both polymers exhibit reversible electrochromic behavior, while the dual-anchored TFPACA-based devices deliver a high optical contrast (ΔT) of 45.08%, a coloration efficiency (CE) of 559.7 cm2 C-1, and excellent cycling stability, retaining 86% of the initial optical contrast after 3500 switching cycles. Building energy consumption simulations further indicate an annual energy reduction of 103,319.23 kWh, corresponding to a carbon emission reduction of approximately 51.66 kg CO2. These results highlight anchoring-induced interfacial engineering as an effective strategy for developing high-performance and durable electrochromic polymers.

ACS Applied Materials & Interfaces
Peking University (CN), Shantou University (CN)
Affordable and clean energy
Openalex Percentile: Top 24%
Conducting polymers and applications
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Anchoring-Induced Interfacial Stabilization in Triphenylamine-Based Electrochromic Polymers — Hong Fu Meng, Yaowu He, et al. · ACS Applied Materials & Interfaces (2026) | TGRS Research Map | TGRS