Efficient silver nanowires/cellulose electrothermal material with enhanced stability for printable chameleon-inspired camouflage device

IF 9.4 1区 化学 Q1 CHEMISTRY, PHYSICAL
Weiyi Zhao , Shaolin Lu , Chengwei Xiao , Yixi Liu , Yuzhao Yang , Tong Wu , Tianjiao Lu , Meihui Yan , Yang You , Jiaqiao Jiang , Zhongke Yuan , Dengchong Feng , Cheng Wang , Xudong Chen
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引用次数: 0

Abstract

Stimuli-responsive camouflage systems with printable architectures and long-term stability are of paramount importance in advanced military applications. In such adaptive camouflage devices, the stimulus-responsive layer that modulates chromatic properties plays a pivotal role. A critical challenge in electrothermal-actuated camouflage systems lies in mitigating the aggregation and enhancing the temporal stability of solution-processed silver nanowires (AgNWs) employed as the active stimulus layer. Herein, we report a rationally designed composite system comprising AgNWs and hydroxypropyl methylcellulose (HPMC), which demonstrates significantly enhanced electrothermal efficiency and operational stability through synergistic thermal management and intermolecular engineering. The incorporation of cellulose matrices in the AgNWs/HPMC composite exhibits substantially lower thermal conductivity compared to AgNWs networks, effectively reducing the heat-transfer coefficient of the electrothermal system. This modification facilitates controlled thermal dissipation from the heating element to the ambient environment, substantially augmenting the electrothermal conversion efficiency. Moreover, the molecular-level interactions between the hydroxyl moieties (C-OH) of HPMC and the carbonyl groups (CO) of AgNWs significantly enhance the spatial uniformity and temporal stability of the electrothermal system. Quantitative analysis reveals that the AgNWs/HPMC heater achieves a 163.2 % increase in temperature elevation compared to conventional AgNWs heaters under identical conditions (3 V, 90 s). The optimized composite system maintains consistent electrothermal performance over 138 days under atmospheric conditions, whereas the control system exhibits complete performance degradation within 5 days. Furthermore, we demonstrate an all-printable multilayer biomimetic device incorporating the AgNWs/cellulose composite as the thermal stimulus layer, achieving rapid chromatic modulation (< 5 s) at ultra-low operating voltages (< 1 V) for efficient environmental adaptation. This work establishes both theoretical foundations for high-performance, stable printable electrothermal materials and provides innovative strategies for fabricating next-generation adaptive camouflage systems.

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来源期刊
CiteScore
16.10
自引率
7.10%
发文量
2568
审稿时长
2 months
期刊介绍: The Journal of Colloid and Interface Science publishes original research findings on the fundamental principles of colloid and interface science, as well as innovative applications in various fields. The criteria for publication include impact, quality, novelty, and originality. Emphasis: The journal emphasizes fundamental scientific innovation within the following categories: A.Colloidal Materials and Nanomaterials B.Soft Colloidal and Self-Assembly Systems C.Adsorption, Catalysis, and Electrochemistry D.Interfacial Processes, Capillarity, and Wetting E.Biomaterials and Nanomedicine F.Energy Conversion and Storage, and Environmental Technologies
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